This is a Validated Antibody Database (VAD) review about rat Map2, based on 323 published articles (read how Labome selects the articles), using Map2 antibody in all methods. It is aimed to help Labome visitors find the most suited Map2 antibody. Please note the number of articles fluctuates since newly identified citations are added and citations for discontinued catalog numbers are removed regularly.
Map2 synonym: MAP2R; Mtap2

Abcam
chicken polyclonal
  • immunocytochemistry; mouse; loading ...; fig 5b
  • immunohistochemistry; mouse; loading ...; fig 5b
Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on mouse samples (fig 5b) and in immunohistochemistry on mouse samples (fig 5b). Sci Adv (2021) ncbi
chicken polyclonal
  • immunohistochemistry; human; 1:1000; fig 1b
Abcam Map2 antibody (Abcam, Ab5392) was used in immunohistochemistry on human samples at 1:1000 (fig 1b). Nat Commun (2021) ncbi
chicken polyclonal
  • immunohistochemistry - free floating section; mouse; 1:1000; loading ...; fig 7a
Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry - free floating section on mouse samples at 1:1000 (fig 7a). Neurobiol Dis (2021) ncbi
chicken polyclonal
  • immunocytochemistry; human; 1:1000; fig 4a
Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on human samples at 1:1000 (fig 4a). EMBO Mol Med (2021) ncbi
domestic rabbit monoclonal
  • immunohistochemistry - paraffin section; mouse; 1:200; loading ...; fig s2a
Abcam Map2 antibody (Abcam, ab183830) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig s2a). Aging Cell (2021) ncbi
chicken polyclonal
  • immunohistochemistry; human; 1:2000; fig 3a
Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry on human samples at 1:2000 (fig 3a). Science (2021) ncbi
chicken polyclonal
  • immunohistochemistry - free floating section; mouse; 1:500; loading ...; fig 3g
Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry - free floating section on mouse samples at 1:500 (fig 3g). elife (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - frozen section; mouse; loading ...; fig 4c
  • flow cytometry; mouse; loading ...; fig 4d
Abcam Map2 antibody (Abcam, ab32454) was used in immunohistochemistry - frozen section on mouse samples (fig 4c) and in flow cytometry on mouse samples (fig 4d). Aging (Albany NY) (2020) ncbi
chicken polyclonal
  • immunocytochemistry; mouse; 1:500; loading ...; fig 1i
Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on mouse samples at 1:500 (fig 1i). Aging Cell (2020) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; loading ...; fig 4e
Abcam Map2 antibody (Abcam, ab11267) was used in immunocytochemistry on rat samples (fig 4e). Commun Biol (2020) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; 1:800; loading ...; fig 2g
Abcam Map2 antibody (abcam, ab32454) was used in immunohistochemistry - paraffin section on mouse samples at 1:800 (fig 2g). Nat Commun (2020) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; rat; 1:250; loading ...; fig 1a
Abcam Map2 antibody (Abcam, ab32454) was used in immunocytochemistry on rat samples at 1:250 (fig 1a). Cells (2020) ncbi
domestic rabbit monoclonal
Abcam Map2 antibody (Abcam, Cambridge, UK, #ab183830) was used . Int J Mol Sci (2020) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; rat; 1:1000; loading ...; fig s1d
Abcam Map2 antibody (Abcam, ab32454) was used in immunocytochemistry on rat samples at 1:1000 (fig s1d). J Neuroinflammation (2020) ncbi
chicken polyclonal
  • immunocytochemistry; mouse; 1:500; loading ...; fig 4c
Abcam Map2 antibody (Abcam, Cambridge, UK, ab5392) was used in immunocytochemistry on mouse samples at 1:500 (fig 4c). Front Cell Neurosci (2019) ncbi
chicken polyclonal
  • immunohistochemistry - paraffin section; pigs ; 1:1000; loading ...; fig 3a
Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry - paraffin section on pigs samples at 1:1000 (fig 3a). J Neuroinflammation (2020) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; human; 1:200; loading ...; fig 4d
Abcam Map2 antibody (Abcam, ab32454) was used in immunohistochemistry - paraffin section on human samples at 1:200 (fig 4d). Nat Commun (2020) ncbi
chicken polyclonal
  • immunocytochemistry; mouse; 1:2000; loading ...; fig 5a
Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on mouse samples at 1:2000 (fig 5a). PLoS ONE (2020) ncbi
mouse monoclonal (HM-2)
  • western blot; rat; 1:1000; loading ...; fig 5a, 5b
Abcam Map2 antibody (Abcam, ab11267) was used in western blot on rat samples at 1:1000 (fig 5a, 5b). Sci Rep (2020) ncbi
chicken polyclonal
  • immunocytochemistry; human; loading ...; fig 1b
Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on human samples (fig 1b). Cell Rep (2020) ncbi
chicken polyclonal
  • immunohistochemistry - paraffin section; human; 1:500; loading ...; fig 2c
Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry - paraffin section on human samples at 1:500 (fig 2c). Nature (2020) ncbi
chicken polyclonal
  • immunohistochemistry; mouse; 1:1000; loading ...; fig 2d
Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry on mouse samples at 1:1000 (fig 2d). elife (2020) ncbi
chicken polyclonal
  • immunocytochemistry; human; loading ...; fig 1b
Abcam Map2 antibody (Abcam, AB5392) was used in immunocytochemistry on human samples (fig 1b). Science (2019) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; rat; 1:400; loading ...; fig 2j
Abcam Map2 antibody (Abcam, ab32454) was used in immunocytochemistry on rat samples at 1:400 (fig 2j). Aging Cell (2020) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; mouse; 1:100; loading ...; fig s5f
Abcam Map2 antibody (Abcam, ab32454) was used in immunohistochemistry on mouse samples at 1:100 (fig s5f). Nat Commun (2019) ncbi
chicken polyclonal
  • immunohistochemistry - frozen section; human; 1:5000; loading ...; fig 1c
Abcam Map2 antibody (Abcam, AB5392) was used in immunohistochemistry - frozen section on human samples at 1:5000 (fig 1c). Nature (2019) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; mouse; 1:400; loading ...; fig 3e
Abcam Map2 antibody (Abcam, ab11267) was used in immunohistochemistry - frozen section on mouse samples at 1:400 (fig 3e). Nat Commun (2019) ncbi
chicken polyclonal
  • immunohistochemistry - frozen section; human; 1:500; loading ...; fig 1b
Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry - frozen section on human samples at 1:500 (fig 1b). Nat Neurosci (2019) ncbi
chicken polyclonal
  • immunocytochemistry; mouse; 1:5,000; loading ...; fig 4h
Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on mouse samples at 1:5,000 (fig 4h). Sci Rep (2019) ncbi
chicken polyclonal
  • immunocytochemistry; rat; loading ...; fig 1e
Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on rat samples (fig 1e). Neuron (2019) ncbi
chicken polyclonal
  • immunohistochemistry; human; 1:500; loading ...; fig 2c
Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry on human samples at 1:500 (fig 2c). Sci Adv (2019) ncbi
chicken polyclonal
  • immunocytochemistry; African green monkey; 1:500; loading ...; fig 5s1a
  • immunocytochemistry; human; 1:500; loading ...; fig 5s1a
Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on African green monkey samples at 1:500 (fig 5s1a) and in immunocytochemistry on human samples at 1:500 (fig 5s1a). elife (2019) ncbi
chicken polyclonal
  • immunohistochemistry - paraffin section; human; 1:500; loading ...; fig s6b
Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry - paraffin section on human samples at 1:500 (fig s6b). Cell (2019) ncbi
chicken polyclonal
  • immunocytochemistry; human; 1:500; loading ...; fig 1b
Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on human samples at 1:500 (fig 1b). Science (2018) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:300; loading ...; fig s1b
Abcam Map2 antibody (Abcam, ab32454) was used in western blot on mouse samples at 1:300 (fig s1b). Mol Ther Nucleic Acids (2018) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; fig s5b
Abcam Map2 antibody (Abcam, ab11267) was used in immunocytochemistry on human samples (fig s5b). Cell (2018) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 1:500; fig 1b
Abcam Map2 antibody (Abcam, ab11267) was used in immunocytochemistry on human samples at 1:500 (fig 1b). Sci Rep (2018) ncbi
chicken polyclonal
  • immunocytochemistry; mouse; fig s4c
Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on mouse samples (fig s4c). Cell (2018) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; 1:250; loading ...; fig 2a
Abcam Map2 antibody (Abcam, ab32454) was used in immunocytochemistry on mouse samples at 1:250 (fig 2a). J Immunol Methods (2017) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; 1:400; loading ...; fig s2g
Abcam Map2 antibody (Abcam, AB32454) was used in immunocytochemistry on mouse samples at 1:400 (fig s2g). J Cell Biol (2017) ncbi
chicken polyclonal
  • immunocytochemistry; mouse; 1:6000; loading ...; fig s2e
Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on mouse samples at 1:6000 (fig s2e). Nat Commun (2017) ncbi
chicken polyclonal
  • immunohistochemistry - frozen section; human; 1:5000
  • immunocytochemistry; human; 1:5000; fig 3f
In order to compare the gene expression in individual cells isolated from human brain organoids, Abcam Map2 antibody (Abcam, AB5392) was used in immunohistochemistry - frozen section on human samples at 1:5000 and in immunocytochemistry on human samples at 1:5000 (fig 3f). Nature (2017) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human
In order to study amyloid precursor protein Tyr phosphorylation in mouse model of Alzheimer's disease, Abcam Map2 antibody (Abcam, ab32454) was used in immunocytochemistry on human samples . Front Mol Neurosci (2017) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; loading ...; fig 1g
Abcam Map2 antibody (Abcam, ab11267) was used in immunocytochemistry on rat samples (fig 1g). Mol Cell Neurosci (2017) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; 1:500; loading ...; tbl 2
In order to test if interleukin-1b derived from microglia affects myelination and axon development in lipopolysaccharide-treated cells, Abcam Map2 antibody (Abcam, ab11267) was used in immunocytochemistry on rat samples at 1:500 (tbl 2). J Neuroinflammation (2017) ncbi
chicken polyclonal
  • immunocytochemistry; rat; loading ...; fig 7
In order to generate an atoxic derivative of Botulism neurotoxin/C1 and assess whether it retains neuron-specific targeting without concomitant toxic host responses, Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on rat samples (fig 7). Sci Rep (2017) ncbi
chicken polyclonal
  • immunohistochemistry; human; fig 9a
Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry on human samples (fig 9a). Mol Neurodegener (2017) ncbi
chicken polyclonal
  • immunocytochemistry; rat; 1:500; loading ...; fig s9a
In order to design a method to assemble and align fibrous structures in a multi-modular three-dimensional conglomerate, Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on rat samples at 1:500 (fig s9a). Nat Commun (2017) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; human; 1:500; loading ...; fig 6a
In order to clarify the role of glycoprotein nonmetastatic melanoma protein B in amyotrophic lateral sclerosis, Abcam Map2 antibody (Abcam, ab11267) was used in immunohistochemistry - paraffin section on human samples at 1:500 (fig 6a). J Neurosci Res (2017) ncbi
chicken polyclonal
  • immunocytochemistry; rat; 1:5000; fig 1e
In order to study how growth hormone affects fear memory formation, Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on rat samples at 1:5000 (fig 1e). Transl Psychiatry (2016) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:1000; loading ...; fig 1e
Abcam Map2 antibody (Abcam, ab11267) was used in immunocytochemistry on mouse samples at 1:1000 (fig 1e). J Biol Chem (2016) ncbi
chicken polyclonal
  • immunohistochemistry; human; loading ...; fig s5
In order to investigate the role of DNA methylation in fragile X syndrome, Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry on human samples (fig s5). Stem Cell Reports (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; cat; 1:100; fig 3a
In order to elucidate how feline panleukopenia virus maintains host cells in the S phase, Abcam Map2 antibody (Abcam, ab32454) was used in immunohistochemistry - paraffin section on cat samples at 1:100 (fig 3a). Cell Cycle (2016) ncbi
chicken polyclonal
  • immunocytochemistry; rat; 1:10,000; fig 5a
In order to investigate the mechanism by which oxytocin attenuates oxygen-glucose deprivation-reperfusion injury, Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on rat samples at 1:10,000 (fig 5a). Sci Rep (2016) ncbi
chicken polyclonal
  • immunocytochemistry; human; 1:500; loading ...; fig s1a
In order to investigate how familial Alzheimer's disease mutations affect endocytosis, Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on human samples at 1:500 (fig s1a). Cell Rep (2016) ncbi
chicken polyclonal
  • immunocytochemistry; rat; 1:2000; fig 2
In order to investigate how acute ethanol exposure results in lasting antidepressant and anxiolytic behaviors, Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on rat samples at 1:2000 (fig 2). Nat Commun (2016) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; fig 6
Abcam Map2 antibody (Abcam, ab11267) was used in immunocytochemistry on mouse samples (fig 6). elife (2016) ncbi
chicken polyclonal
  • proximity ligation assay; mouse; loading ...; fig s2
In order to find amino acids important for sorting nexin 27 interactions, Abcam Map2 antibody (Abcam, ab92434) was used in proximity ligation assay on mouse samples (fig s2). Nat Struct Mol Biol (2016) ncbi
chicken polyclonal
  • immunocytochemistry; human; 1:1000; loading ...; fig 1h
Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on human samples at 1:1000 (fig 1h). Nature (2016) ncbi
chicken polyclonal
  • western blot; roundworm ; 1:1000; fig 7
Abcam Map2 antibody (Abcam, ab5392) was used in western blot on roundworm samples at 1:1000 (fig 7). BMC Biol (2016) ncbi
chicken polyclonal
  • immunocytochemistry; mouse; loading ...; fig s7e
In order to test if antibody effector function is required for limiting the spread of tau, Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on mouse samples (fig s7e). Cell Rep (2016) ncbi
chicken polyclonal
  • immunocytochemistry; mouse; loading ...; fig 1a
In order to propose that PTEN's role in axonal polarity can be independent of PIP3, Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on mouse samples (fig 1a). Biochim Biophys Acta (2016) ncbi
mouse monoclonal (AP-20)
  • immunohistochemistry; zebrafish ; 1:100; loading ...; fig 7a
In order to study brain-derived neurotrophic factor in zebrafish, Abcam Map2 antibody (Abcam, 11268) was used in immunohistochemistry on zebrafish samples at 1:100 (fig 7a). PLoS ONE (2016) ncbi
chicken polyclonal
  • immunohistochemistry; black ferret; 1:200; loading ...; fig 7b
Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry on black ferret samples at 1:200 (fig 7b). Shock (2016) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; 1:500; fig 2
  • western blot; rat; fig s5
In order to elucidate an increase of apoptosis and disruption of cytoskeleton organization of rat neural crest stem cells via upregulating CXCR4 expression and RhoA-ROCK1-p38 MAPK-p53 signaling due to simulated microgravity, Abcam Map2 antibody (Abcam, HM-2) was used in immunocytochemistry on rat samples at 1:500 (fig 2) and in western blot on rat samples (fig s5). Stem Cells Dev (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; fig 1
In order to measure LCN2 in ischemic samples, Abcam Map2 antibody (abcam, ab32454) was used in immunohistochemistry - paraffin section on mouse samples (fig 1). PLoS ONE (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; rat; fig 7
Abcam Map2 antibody (abcam, ab11267) was used in immunohistochemistry on rat samples (fig 7). Sci Rep (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; human; 1:100; fig 5
In order to study alteration of MAP2 splicing in Huntington's disease, Abcam Map2 antibody (Abcam, ab32454) was used in immunohistochemistry - paraffin section on human samples at 1:100 (fig 5). Brain Pathol (2017) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; rat; 1:2000; fig 2
In order to utilize fluorescent non-canonical amino acid tagging to monitor mRNA translation in neuronal processes, Abcam Map2 antibody (Abcam, ab32454) was used in immunocytochemistry on rat samples at 1:2000 (fig 2). J Histochem Cytochem (2016) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; human; loading ...; fig 2d
  • western blot; human; loading ...; fig s3c
In order to present the effect of pharmacological enhancement of mGlu5 receptors on behavioral deficits in SHANK3 knock-out mice, Abcam Map2 antibody (Abcam, AB11268) was used in immunocytochemistry on human samples (fig 2d) and in western blot on human samples (fig s3c). Mol Psychiatry (2017) ncbi
mouse monoclonal (AP-20)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 2c
Abcam Map2 antibody (abcam, ab11268) was used in immunohistochemistry - paraffin section on mouse samples (fig 2c). PLoS ONE (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; fig 5
Abcam Map2 antibody (Abcam, ab32454) was used in immunocytochemistry on mouse samples (fig 5). Front Neurosci (2016) ncbi
chicken polyclonal
  • immunocytochemistry; mouse; fig s3
Abcam Map2 antibody (Abcam, ab5392) was used in immunocytochemistry on mouse samples (fig s3). elife (2016) ncbi
mouse monoclonal (AP-20)
  • western blot; mouse; fig 4
Abcam Map2 antibody (Abcam, ab11268) was used in western blot on mouse samples (fig 4). Sci Rep (2016) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; fig s2
In order to characterize the interaction between Shootin1 and CDKL5 and how they work together to regulate neuronal polarization, Abcam Map2 antibody (Abcam, ab11267) was used in immunocytochemistry on mouse samples (fig s2). PLoS ONE (2016) ncbi
chicken polyclonal
  • immunohistochemistry; mouse; 1:5000; fig 3
Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry on mouse samples at 1:5000 (fig 3). Mol Psychiatry (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; 1:500; fig 3
Abcam Map2 antibody (Abcam, ab32454) was used in immunocytochemistry on mouse samples at 1:500 (fig 3). Nat Commun (2016) ncbi
chicken polyclonal
  • immunohistochemistry; human; 1:2000; loading ...; fig 2a
Abcam Map2 antibody (Abeam, ab5392) was used in immunohistochemistry on human samples at 1:2000 (fig 2a). Methods (2016) ncbi
mouse monoclonal (HM-2)
  • western blot; mouse; fig 2c
Abcam Map2 antibody (Abcam, ab 11267) was used in western blot on mouse samples (fig 2c). Transl Psychiatry (2015) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; 1:500
In order to develop an animal model for intrapartum inflammation at term, Abcam Map2 antibody (Abcam, ab11267) was used in immunocytochemistry on rat samples at 1:500. Am J Obstet Gynecol (2015) ncbi
chicken polyclonal
  • other; mouse; 1:10,000; loading ...; fig 2b
Abcam Map2 antibody (Abcam, 5392) was used in other on mouse samples at 1:10,000 (fig 2b). Mol Neurobiol (2016) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; human; 1:400
Abcam Map2 antibody (Abcam, ab11268) was used in immunocytochemistry on human samples at 1:400. Ann Clin Transl Neurol (2014) ncbi
mouse monoclonal (HM-2)
  • western blot; human
In order to describe a slice culture method to study changes to the neurons and blood brain barrier, Abcam Map2 antibody (Abcam, ab11267) was used in western blot on human samples . J Vis Exp (2014) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 1:500; tbl 1
Abcam Map2 antibody (Abcam, ab11267) was used in immunocytochemistry on human samples at 1:500 (tbl 1). Stem Cells Dev (2015) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 1:500
In order to evaluate a co-culture system for studying the neurovascular unit, Abcam Map2 antibody (Abcam, ab11267) was used in immunocytochemistry on human samples at 1:500. PLoS ONE (2014) ncbi
chicken polyclonal
  • immunohistochemistry - paraffin section; rat; 1:1500
In order to compare the survival and migration of murine boundary cap neural crest stem cells and predifferentiated neuron precursors after their implantation, Abcam Map2 antibody (Abcam, ab5392) was used in immunohistochemistry - paraffin section on rat samples at 1:1500. J Tissue Eng Regen Med (2017) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; rat; 1:1000
Abcam Map2 antibody (Abcam, ab11267) was used in immunohistochemistry on rat samples at 1:1000. Microsc Res Tech (2014) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 1:200
Abcam Map2 antibody (Abcam, ab11267) was used in immunocytochemistry on human samples at 1:200. PLoS ONE (2013) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; human; 1:200
Abcam Map2 antibody (Abcam, ab11267) was used in immunohistochemistry - frozen section on human samples at 1:200. Stem Cells Dev (2014) ncbi
mouse monoclonal (AP-20)
  • immunohistochemistry - frozen section; mouse
Abcam Map2 antibody (Abcam, ab11268) was used in immunohistochemistry - frozen section on mouse samples . PLoS ONE (2013) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; 1:200; fig 2a
Abcam Map2 antibody (Abcam, Ab11267) was used in immunocytochemistry on rat samples at 1:200 (fig 2a). J Tissue Eng Regen Med (2015) ncbi
Synaptic Systems
mouse monoclonal (198A5)
  • immunohistochemistry; mouse; 1:200; fig 1d
Synaptic Systems Map2 antibody (Synaptic Systems, 188011) was used in immunohistochemistry on mouse samples at 1:200 (fig 1d). Br J Pharmacol (2021) ncbi
guinea-pigs polyclonal
  • immunocytochemistry; mouse; loading ...; fig s4k
Synaptic Systems Map2 antibody (Synaptic systems, 188 004) was used in immunocytochemistry on mouse samples (fig s4k). Cell Rep (2021) ncbi
guinea-pigs polyclonal
  • immunohistochemistry; human; 1:100
Synaptic Systems Map2 antibody (Synaptic System, 188 004) was used in immunohistochemistry on human samples at 1:100. Nat Commun (2021) ncbi
guinea-pigs polyclonal
  • immunocytochemistry; mouse; 1:500; loading ...; fig 5d
Synaptic Systems Map2 antibody (Synaptic Systems, 188004) was used in immunocytochemistry on mouse samples at 1:500 (fig 5d). elife (2021) ncbi
mouse monoclonal (198A5)
  • immunocytochemistry; mouse; 1:1000; loading ...; fig 1a1
Synaptic Systems Map2 antibody (Synaptic Systems, 188 011) was used in immunocytochemistry on mouse samples at 1:1000 (fig 1a1). elife (2020) ncbi
guinea-pigs polyclonal
  • immunohistochemistry - frozen section; human; 1:10,000; loading ...; fig s1d
Synaptic Systems Map2 antibody (Synaptic Systems, 188004) was used in immunohistochemistry - frozen section on human samples at 1:10,000 (fig s1d). Science (2020) ncbi
guinea-pigs polyclonal
  • immunocytochemistry; human; 1:1000; fig s1d
Synaptic Systems Map2 antibody (SYSY, 188 004) was used in immunocytochemistry on human samples at 1:1000 (fig s1d). Acta Neuropathol (2019) ncbi
guinea-pigs polyclonal
  • immunocytochemistry; rat; 1:500; loading ...; fig 3c
Synaptic Systems Map2 antibody (Synaptic Systems, 188004) was used in immunocytochemistry on rat samples at 1:500 (fig 3c). elife (2019) ncbi
domestic rabbit polyclonal
  • western blot; rat; 1:500; loading ...; fig 8a
Synaptic Systems Map2 antibody (Synaptic Systems, 188 003) was used in western blot on rat samples at 1:500 (fig 8a). Cell Death Differ (2019) ncbi
guinea-pigs polyclonal
  • immunocytochemistry; rat; loading ...; fig 1c
Synaptic Systems Map2 antibody (Synaptic systems, 188004) was used in immunocytochemistry on rat samples (fig 1c). Cell (2019) ncbi
mouse monoclonal (198A5)
  • immunohistochemistry - frozen section; mouse; 1:500; loading ...; fig 3s1a
Synaptic Systems Map2 antibody (Synaptic Systems, 188011) was used in immunohistochemistry - frozen section on mouse samples at 1:500 (fig 3s1a). elife (2018) ncbi
guinea-pigs polyclonal
  • immunohistochemistry; rat; 1:500; loading ...; fig 2a
Synaptic Systems Map2 antibody (Synaptic Systems, 188-004) was used in immunohistochemistry on rat samples at 1:500 (fig 2a). J Cell Biol (2018) ncbi
guinea-pigs polyclonal
  • immunohistochemistry; human; 1:1000; fig 1c
Synaptic Systems Map2 antibody (Synaptic Systems, 188004) was used in immunohistochemistry on human samples at 1:1000 (fig 1c). Nature (2017) ncbi
guinea-pigs polyclonal
  • immunocytochemistry; rat; loading ...; fig 1b
In order to find a role for MAGUK p55 subfamily member 2 in the synapses of rat central neurons, Synaptic Systems Map2 antibody (Synaptic Systems, 188004) was used in immunocytochemistry on rat samples (fig 1b). Sci Rep (2016) ncbi
guinea-pigs polyclonal
  • immunocytochemistry; human; 1:250; fig 3a,3b
Synaptic Systems Map2 antibody (Synaptic Systems, 188 004) was used in immunocytochemistry on human samples at 1:250 (fig 3a,3b). elife (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; loading ...; fig 4c
Synaptic Systems Map2 antibody (Synaptic Systems, 188002) was used in immunocytochemistry on mouse samples (fig 4c). Proc Natl Acad Sci U S A (2016) ncbi
chicken polyclonal
  • immunohistochemistry - frozen section; mouse; 1:500; fig 5
Synaptic Systems Map2 antibody (Synaptic System, 188006) was used in immunohistochemistry - frozen section on mouse samples at 1:500 (fig 5). Front Cell Neurosci (2016) ncbi
guinea-pigs polyclonal
  • immunocytochemistry; mouse; fig s5
Synaptic Systems Map2 antibody (Synaptic systems, 188 004) was used in immunocytochemistry on mouse samples (fig s5). Acta Neuropathol (2016) ncbi
mouse monoclonal (198A5)
  • immunohistochemistry; mouse; fig 5
  • immunohistochemistry; human; fig 5
Synaptic Systems Map2 antibody (Synaptic Systems, 188011) was used in immunohistochemistry on mouse samples (fig 5) and in immunohistochemistry on human samples (fig 5). Stem Cell Res Ther (2015) ncbi
Santa Cruz Biotechnology
mouse monoclonal (AP20)
  • immunohistochemistry; mouse; loading ...
Santa Cruz Biotechnology Map2 antibody (Santa Cruz, sc-32791) was used in immunohistochemistry on mouse samples . iScience (2021) ncbi
mouse monoclonal (A-8)
  • immunocytochemistry; mouse; loading ...; fig 3e
  • immunohistochemistry; mouse; loading ...; fig 11a
Santa Cruz Biotechnology Map2 antibody (Santa Cruz, sc-74422) was used in immunocytochemistry on mouse samples (fig 3e) and in immunohistochemistry on mouse samples (fig 11a). Theranostics (2020) ncbi
mouse monoclonal (A-4)
  • immunohistochemistry - frozen section; mouse; 1:500; loading ...; fig 4e
Santa Cruz Biotechnology Map2 antibody (Santa Cruz, sc-74421) was used in immunohistochemistry - frozen section on mouse samples at 1:500 (fig 4e). elife (2020) ncbi
mouse monoclonal (AA5)
  • western blot; mouse; 1:250; loading ...; fig 3b
Santa Cruz Biotechnology Map2 antibody (Santa Cruz, SC80012) was used in western blot on mouse samples at 1:250 (fig 3b). Brain (2019) ncbi
mouse monoclonal (A-4)
  • immunocytochemistry; human; fig 3
Santa Cruz Biotechnology Map2 antibody (SantaCruz, sc-74421) was used in immunocytochemistry on human samples (fig 3). Cell Biol Int (2018) ncbi
mouse monoclonal (AP20)
  • immunohistochemistry - paraffin section; mouse; 1:200; loading ...; fig 2a
  • immunohistochemistry - paraffin section; human; 1:200; loading ...; fig 3a
In order to assess structural and biochemical phenotypes of neuronal transcriptional repression-induced atypical cell death in patient brains with Huntington's disease, Santa Cruz Biotechnology Map2 antibody (Santa Cruz, sc-32791) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig 2a) and in immunohistochemistry - paraffin section on human samples at 1:200 (fig 3a). Acta Neuropathol Commun (2017) ncbi
mouse monoclonal (A-4)
  • immunohistochemistry - frozen section; rat; 1:100; loading ...; fig 2a
  • western blot; rat; loading ...; fig 2c
Santa Cruz Biotechnology Map2 antibody (SantaCruz, sc-74421) was used in immunohistochemistry - frozen section on rat samples at 1:100 (fig 2a) and in western blot on rat samples (fig 2c). Sci Rep (2017) ncbi
mouse monoclonal (AP20)
  • immunohistochemistry - paraffin section; mouse; 1:200; fig s3c
  • immunohistochemistry - paraffin section; human; 1:200; fig s4b
In order to describe a role for HMGB1 in Alzheimer's disease pathogenesis, Santa Cruz Biotechnology Map2 antibody (Santa Cruz Biotechnology, sc-32791) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig s3c) and in immunohistochemistry - paraffin section on human samples at 1:200 (fig s4b). Sci Rep (2016) ncbi
mouse monoclonal (AP20)
  • immunohistochemistry - frozen section; rat
Santa Cruz Biotechnology Map2 antibody (Santa Cruz, SC32791) was used in immunohistochemistry - frozen section on rat samples . Brain Inj (2015) ncbi
mouse monoclonal (A-8)
  • immunohistochemistry - frozen section; human; 1:100
  • immunohistochemistry - frozen section; rat; 1:100
Santa Cruz Biotechnology Map2 antibody (Santa Cruz Biotechnology, sc-74422) was used in immunohistochemistry - frozen section on human samples at 1:100 and in immunohistochemistry - frozen section on rat samples at 1:100. J Neurochem (2015) ncbi
mouse monoclonal (A-4)
  • western blot; rat; fig 7
Santa Cruz Biotechnology Map2 antibody (santa Cruz, sc-74421) was used in western blot on rat samples (fig 7). Int J Mol Med (2015) ncbi
mouse monoclonal (A-4)
  • immunocytochemistry; rat; 1:100; fig 4
Santa Cruz Biotechnology Map2 antibody (Santa Cruz, sc-74421) was used in immunocytochemistry on rat samples at 1:100 (fig 4). Int J Mol Med (2015) ncbi
mouse monoclonal (AP20)
  • immunohistochemistry; rat
Santa Cruz Biotechnology Map2 antibody (Santa Cruz Biotechnology, SC32791) was used in immunohistochemistry on rat samples . J Cereb Blood Flow Metab (2014) ncbi
Invitrogen
mouse monoclonal (AP18)
  • immunocytochemistry; mouse; loading ...; fig 3f
Invitrogen Map2 antibody (Thermo Fisher, MA5-12826) was used in immunocytochemistry on mouse samples (fig 3f). Aging (Albany NY) (2020) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - free floating section; rat; 1:1000; loading ...; fig 1c
  • immunocytochemistry; rat; 1:750; loading ...; fig 2b
Invitrogen Map2 antibody (Thermo Fisher, MA1-25043) was used in immunohistochemistry - free floating section on rat samples at 1:1000 (fig 1c) and in immunocytochemistry on rat samples at 1:750 (fig 2b). elife (2019) ncbi
mouse monoclonal (AP20)
  • immunohistochemistry - frozen section; mouse; 1:200; loading ...; fig s7a
Invitrogen Map2 antibody (Invitrogen, AP20) was used in immunohistochemistry - frozen section on mouse samples at 1:200 (fig s7a). Sci Rep (2018) ncbi
mouse monoclonal (AP18)
  • immunohistochemistry - paraffin section; mouse; 1:200; loading ...; fig st11
  • immunohistochemistry - paraffin section; rat; 1:200; loading ...; fig st11
  • immunohistochemistry - paraffin section; dogs; 1:200; loading ...; fig st11
In order to outline the protocols for antibodies used for immunohistochemical studies, Invitrogen Map2 antibody (Neomarkers, MS-250) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig st11), in immunohistochemistry - paraffin section on rat samples at 1:200 (fig st11) and in immunohistochemistry - paraffin section on dogs samples at 1:200 (fig st11). J Toxicol Pathol (2017) ncbi
mouse monoclonal (AP18)
  • immunocytochemistry; human; 1:300; fig 3a
In order to investigate 20nm citrate-coated and polyvinylpyrrolidone-coated silver nanoparticle-induced neurotoxicity, Invitrogen Map2 antibody (ThermoFisher Scientific, MA5-12826) was used in immunocytochemistry on human samples at 1:300 (fig 3a). Neurotoxicology (2016) ncbi
chicken polyclonal
In order to discuss the consequences of copy number variation on chromosome 15q11.2, Invitrogen Map2 antibody (Thermo Fisher Scientific Pierce, PA1-10005) was used . Mol Neuropsychiatry (2015) ncbi
mouse monoclonal (M13)
  • immunocytochemistry; human
In order to examine the biocompatibility of chemical vapor deposited nanocrystalline diamond after the inclusion of boron, Invitrogen Map2 antibody (Life technologies, 13-1500) was used in immunocytochemistry on human samples . J Neural Eng (2015) ncbi
mouse monoclonal (M13)
  • immunocytochemistry; human; 1:200
In order to evaluate the TALEN-mediated gene targeting in human stem cells, Invitrogen Map2 antibody (Life Technolgoies, 13-1500) was used in immunocytochemistry on human samples at 1:200. PLoS ONE (2015) ncbi
mouse monoclonal (AP18)
  • immunocytochemistry; human; fig 1
In order to study Neuropilin 1-mediated Sema3A signaling in the optic tectum, Invitrogen Map2 antibody (Thermo Scientific, MA5-12826) was used in immunocytochemistry on human samples (fig 1). Development (2014) ncbi
mouse monoclonal (AP20)
  • immunohistochemistry - paraffin section; human; 1:400; loading ...; fig s2a
In order to determine the expression of abnormal serine phosphorylation of insulin receptor substrate 1 in healthy and diseased human brains, Invitrogen Map2 antibody (NeoMarkers, AP20) was used in immunohistochemistry - paraffin section on human samples at 1:400 (fig s2a). Acta Neuropathol (2014) ncbi
mouse monoclonal (AP20)
  • immunohistochemistry - paraffin section; mouse; 1:6000; fig 7
In order to elucidate the cell-type specific role of ABCA1 in neuroinflammation in vivo, Invitrogen Map2 antibody (Thermo Scientific, MS-249) was used in immunohistochemistry - paraffin section on mouse samples at 1:6000 (fig 7). Neurobiol Dis (2013) ncbi
mouse monoclonal (M13)
  • immunohistochemistry; mouse; 1:1000; fig 4
In order to study the effects of ROS scavengers on the phosphorylation and cell-surface localization of GluA1 and GluA2, Invitrogen Map2 antibody (Invitrogen, 13-1500) was used in immunohistochemistry on mouse samples at 1:1000 (fig 4). Pain (2012) ncbi
mouse monoclonal (M13)
  • immunocytochemistry; human; fig 1
In order to identify the transcription factors that determine the rostocaudal and dorsoventral identity of NT2N derived from a monolayer differentiation model, Invitrogen Map2 antibody (Invitrogen, 13-1500) was used in immunocytochemistry on human samples (fig 1). PLoS ONE (2011) ncbi
mouse monoclonal (M13)
  • immunohistochemistry - paraffin section; human; 1:400; tbl 3
In order to examine CD133 and other developmental markers in balloon cells of focal cortical dysplasia, Invitrogen Map2 antibody (Zymed, M13) was used in immunohistochemistry - paraffin section on human samples at 1:400 (tbl 3). J Clin Neurosci (2011) ncbi
mouse monoclonal (M13)
  • immunohistochemistry - frozen section; human; fig 2
In order to examine the expression of Bcl-2 in tumoral cells from a patient with papillary tumor of the pineal region, Invitrogen Map2 antibody (Zymed, M13) was used in immunohistochemistry - frozen section on human samples (fig 2). Neuropathology (2008) ncbi
mouse monoclonal (M13)
  • immunocytochemistry; human; 1:500; fig 3
In order to report the generation of fibrillar and vesicular inclusions in a long-term cybrid cell culture model used to study Parkinson's disease, Invitrogen Map2 antibody (Zymed Laboratories, 13-1500) was used in immunocytochemistry on human samples at 1:500 (fig 3). J Neurochem (2004) ncbi
mouse monoclonal (M13)
  • immunoprecipitation; rat
  • western blot; rat
In order to show that that MAP2 resides in a complex with the NMDA receptor, Invitrogen Map2 antibody (Zymed, 13-1500) was used in immunoprecipitation on rat samples and in western blot on rat samples . Brain Res (2003) ncbi
Novus Biologicals
chicken polyclonal
  • immunocytochemistry; mouse; 1:500; fig s1e
Novus Biologicals Map2 antibody (Novus Biologicals, NB300-213) was used in immunocytochemistry on mouse samples at 1:500 (fig s1e). Nat Commun (2021) ncbi
chicken polyclonal
  • immunocytochemistry; rat; loading ...; fig 1e
Novus Biologicals Map2 antibody (Novus Biologicals, NB300-213) was used in immunocytochemistry on rat samples (fig 1e). Cell Rep (2019) ncbi
chicken polyclonal
  • immunocytochemistry; human; 1:500; loading ...; fig 6c
Novus Biologicals Map2 antibody (Novus, NB300-213) was used in immunocytochemistry on human samples at 1:500 (fig 6c). Neuron (2019) ncbi
chicken polyclonal
  • immunohistochemistry; human; loading ...; fig s7c
In order to research the effects of two familial ALS proteins on DNA damage repair, Novus Biologicals Map2 antibody (Novus, 300-312) was used in immunohistochemistry on human samples (fig s7c). Proc Natl Acad Sci U S A (2016) ncbi
mouse monoclonal (4H5)
  • immunohistochemistry - frozen section; mouse; 1:500; fig 5
Novus Biologicals Map2 antibody (Novus Biologicals, NBP2-25156) was used in immunohistochemistry - frozen section on mouse samples at 1:500 (fig 5). Front Cell Neurosci (2016) ncbi
chicken polyclonal
  • immunocytochemistry; mouse; 1:2000; fig s8
In order to study the coupling of cellular prion protein to intracellular signaling in Alzheimer's disease by metabotropic glutamate receptor 5, Novus Biologicals Map2 antibody (Novus Biologicals, NB300-213) was used in immunocytochemistry on mouse samples at 1:2000 (fig s8). Brain (2016) ncbi
chicken polyclonal
In order to study amacrine and horizontal cells in the retinal vascular plexuses, Novus Biologicals Map2 antibody (Novus Biologicals, NB300-213) was used . J Clin Invest (2015) ncbi
chicken polyclonal
Novus Biologicals Map2 antibody (Novus Biologicals, NB300-213) was used . Nucleic Acids Res (2012) ncbi
BioLegend
chicken polyclonal (Poly28225)
  • immunocytochemistry; human; loading ...; fig s3a
BioLegend Map2 antibody (Biolegend, 822,501) was used in immunocytochemistry on human samples (fig s3a). Acta Neuropathol Commun (2019) ncbi
mouse monoclonal (SMI 52)
  • immunohistochemistry - frozen section; rat; 1:1000; loading ...; fig 4e
  • immunohistochemistry; rat; 1:1000; loading ...; fig 4b
BioLegend Map2 antibody (BioLegend, 801801) was used in immunohistochemistry - frozen section on rat samples at 1:1000 (fig 4e) and in immunohistochemistry on rat samples at 1:1000 (fig 4b). J Comp Neurol (2019) ncbi
mouse monoclonal (SMI 52)
  • western blot; human; 1:1000; loading ...; fig 6h
BioLegend Map2 antibody (Covance, SMI-52R) was used in western blot on human samples at 1:1000 (fig 6h). Nat Commun (2017) ncbi
mouse monoclonal (SMI 52)
  • immunohistochemistry; mouse; loading ...; fig st1
In order to develop a method for super-resolution imaging of the multiscale organization of intact tissues and use it to image the mouse brain, BioLegend Map2 antibody (BioLegend, 801801) was used in immunohistochemistry on mouse samples (fig st1). Nat Biotechnol (2016) ncbi
mouse monoclonal (SMI 52)
  • immunocytochemistry; human
BioLegend Map2 antibody (Covance, SMI-52R) was used in immunocytochemistry on human samples . FASEB J (2013) ncbi
mouse monoclonal (SMI 52)
  • immunohistochemistry - free floating section; mouse; 1:500
BioLegend Map2 antibody (Sternberger Monoclonals, SMI52) was used in immunohistochemistry - free floating section on mouse samples at 1:500. J Comp Neurol (2007) ncbi
EnCor Biotechnology
chicken polyclonal
  • immunocytochemistry; mouse; 1:2000; loading ...; fig 3a
EnCor Biotechnology Map2 antibody (Encor, CPCA MAP2) was used in immunocytochemistry on mouse samples at 1:2000 (fig 3a). elife (2021) ncbi
chicken polyclonal
  • immunocytochemistry; mouse; 1:500; loading ...; fig 2a
EnCor Biotechnology Map2 antibody (Encor Biotech, CPCA-MAP2) was used in immunocytochemistry on mouse samples at 1:500 (fig 2a). elife (2020) ncbi
chicken polyclonal
  • immunocytochemistry; human; fig 5d
EnCor Biotechnology Map2 antibody (Encor Biotech, CPCA-MAP2) was used in immunocytochemistry on human samples (fig 5d). Cell (2018) ncbi
chicken polyclonal
  • immunocytochemistry; mouse; 1:2000; fig 3
In order to study regulation of long-term depression and learning rate by the X-linked inhibitor of apoptosis, EnCor Biotechnology Map2 antibody (EnCor Biotech, CPCA-MAP2) was used in immunocytochemistry on mouse samples at 1:2000 (fig 3). FASEB J (2016) ncbi
chicken polyclonal
  • immunocytochemistry; human; 1:2000; fig 1
In order to elucidate the mechanisms by which L1CAM gene mutations result in neuronal defects, EnCor Biotechnology Map2 antibody (EnCor, CPCA-MAP2) was used in immunocytochemistry on human samples at 1:2000 (fig 1). J Exp Med (2016) ncbi
Cell Signaling Technology
domestic rabbit polyclonal
  • immunocytochemistry; mouse; 1:150; fig 1e
Cell Signaling Technology Map2 antibody (Cell Signaling Technologies, 4542) was used in immunocytochemistry on mouse samples at 1:150 (fig 1e). J Biol Chem (2021) ncbi
domestic rabbit monoclonal (D5G1)
  • immunohistochemistry; mouse; 1:300; loading ...; fig 5d
Cell Signaling Technology Map2 antibody (CST, 8707T) was used in immunohistochemistry on mouse samples at 1:300 (fig 5d). Front Cell Dev Biol (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - frozen section; mouse; 1:50; loading ...; fig 2d
  • western blot; mouse; 1:1000; loading ...; fig 5e
  • immunohistochemistry - frozen section; human; 1:50; loading ...; fig s6
Cell Signaling Technology Map2 antibody (Cell signaling, 4542) was used in immunohistochemistry - frozen section on mouse samples at 1:50 (fig 2d), in western blot on mouse samples at 1:1000 (fig 5e) and in immunohistochemistry - frozen section on human samples at 1:50 (fig s6). Acta Neuropathol Commun (2021) ncbi
domestic rabbit polyclonal
  • western blot; rat; 1:1000; loading ...; fig 4c
Cell Signaling Technology Map2 antibody (Cell Signalling, 4542S) was used in western blot on rat samples at 1:1000 (fig 4c). Front Cell Neurosci (2019) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 4b
Cell Signaling Technology Map2 antibody (Cell Signaling, 4542) was used in western blot on mouse samples at 1:1000 (fig 4b). Mol Med Rep (2020) ncbi
domestic rabbit monoclonal (D5G1)
  • immunocytochemistry; human; loading ...; fig 1b
Cell Signaling Technology Map2 antibody (Cell Signaling Technology, D5G1) was used in immunocytochemistry on human samples (fig 1b). Cell Death Dis (2019) ncbi
domestic rabbit monoclonal (D5G1)
  • immunohistochemistry - frozen section; mouse; 1:400; loading ...; fig 3e
Cell Signaling Technology Map2 antibody (Cell Signaling, 8707S) was used in immunohistochemistry - frozen section on mouse samples at 1:400 (fig 3e). Nat Commun (2019) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; 1:200; loading ...; fig 1c
Cell Signaling Technology Map2 antibody (Cell signaling, 4542) was used in immunocytochemistry on human samples at 1:200 (fig 1c). Stem Cell Res (2019) ncbi
domestic rabbit monoclonal (D5G1)
  • immunohistochemistry; rat; 1:200; loading ...; fig 4a
  • western blot; rat; 1:1000; loading ...; fig 4b
Cell Signaling Technology Map2 antibody (Cell Signaling, 8707) was used in immunohistochemistry on rat samples at 1:200 (fig 4a) and in western blot on rat samples at 1:1000 (fig 4b). Sci Rep (2018) ncbi
domestic rabbit monoclonal (D5G1)
  • western blot; mouse; loading ...; fig s1b
In order to investigate the involvement of acetyl-CoA synthetase in histone acetylation and hippocampal memory, Cell Signaling Technology Map2 antibody (Cell Signaling, 8707) was used in western blot on mouse samples (fig s1b). Nature (2017) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - frozen section; mouse; 1:1000; loading ...; fig 2a
In order to discuss the role of melanin-concentrating hormone in the neuroprotective mechanism of acupuncture, Cell Signaling Technology Map2 antibody (Cell Signaling, 4542) was used in immunohistochemistry - frozen section on mouse samples at 1:1000 (fig 2a). Mol Neurobiol (2017) ncbi
domestic rabbit monoclonal (D5G1)
  • western blot; mouse; 1:1000
Cell Signaling Technology Map2 antibody (Cell Signaling, 8707S) was used in western blot on mouse samples at 1:1000. Dis Model Mech (2016) ncbi
domestic rabbit monoclonal (D5G1)
  • immunohistochemistry; mouse; loading ...; fig st1
In order to develop a method for super-resolution imaging of the multiscale organization of intact tissues and use it to image the mouse brain, Cell Signaling Technology Map2 antibody (Cell Signalling, 8707) was used in immunohistochemistry on mouse samples (fig st1). Nat Biotechnol (2016) ncbi
domestic rabbit polyclonal
  • western blot; rat; 1:800; loading ...; fig 6b
Cell Signaling Technology Map2 antibody (Cell signaling, 4542) was used in western blot on rat samples at 1:800 (fig 6b). BMC Complement Altern Med (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; 1:1000; fig 3
In order to characterize mice with a deletion of JMJD2B in neurons showing hyperactive behavior, defective spine maturation, and memory deficits, Cell Signaling Technology Map2 antibody (Cell Signaling Technology, 45425) was used in immunocytochemistry on mouse samples at 1:1000 (fig 3). Transl Psychiatry (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; fig 2
In order to investigate survival and neuronal differentiation of human BM-MSCs by pulsed electromagnetic fields, Cell Signaling Technology Map2 antibody (Cell signaling, 4542S) was used in immunocytochemistry on human samples (fig 2). Life Sci (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; rat; 1:200
Cell Signaling Technology Map2 antibody (Sigma Chemical, 4542S) was used in immunohistochemistry - paraffin section on rat samples at 1:200. Mol Neurobiol (2016) ncbi
MilliporeSigma
mouse monoclonal (AP-20)
  • immunohistochemistry; mouse; 1:500; loading ...; fig s2a
MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunohistochemistry on mouse samples at 1:500 (fig s2a). Cell Rep (2021) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; human; 1:200; loading ...; fig s1a
MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunocytochemistry on human samples at 1:200 (fig s1a). Environ Health Perspect (2021) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; loading ...; fig s5b
MilliporeSigma Map2 antibody (Sigma-Aldrich, M9942) was used in immunocytochemistry on mouse samples (fig s5b). PLoS Biol (2021) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; human; 1:500; loading ...; fig 3c
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry on human samples at 1:500 (fig 3c). Brain Commun (2021) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; mouse; 1:200; loading ...; fig 1e
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry on mouse samples at 1:200 (fig 1e). Acta Neuropathol Commun (2021) ncbi
mouse monoclonal (AP-20)
  • immunohistochemistry; human; 1:1000; loading ...; fig 5c
MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunohistochemistry on human samples at 1:1000 (fig 5c). Int J Mol Sci (2021) ncbi
mouse monoclonal (HM-2)
MilliporeSigma Map2 antibody (Sigma, M4403) was used . Transl Psychiatry (2020) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; mouse; 1:200; loading ...; fig 6g
MilliporeSigma Map2 antibody (Sigma, 1406) was used in immunocytochemistry on mouse samples at 1:200 (fig 6g). elife (2020) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:1000; loading ...; fig 5a
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunocytochemistry on mouse samples at 1:1000 (fig 5a). elife (2020) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 1:1000; loading ...; fig 3d
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on human samples at 1:1000 (fig 3d). Front Immunol (2020) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; mouse; 1:1000; loading ...; fig 1m
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry - frozen section on mouse samples at 1:1000 (fig 1m). Nat Commun (2020) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; mouse; 1:1000; loading ...; fig 1a, b, 8a
MilliporeSigma Map2 antibody (Sigma-Aldrich, #M4403) was used in immunohistochemistry - paraffin section on mouse samples at 1:1000 (fig 1a, b, 8a). Eneuro (2020) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; mouse; 1:1000; loading ...; fig 1b
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry on mouse samples at 1:1000 (fig 1b). Cell Stem Cell (2020) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; mouse; 1:1000; loading ...; fig 3a
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry - paraffin section on mouse samples at 1:1000 (fig 3a). Cell Death Dis (2020) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 1:500; loading ...; fig 5f
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on human samples at 1:500 (fig 5f). Nat Commun (2020) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; human; loading ...; fig 3b
MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunocytochemistry on human samples (fig 3b). FEBS Open Bio (2020) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; rat; 1:500; loading ...; fig 3
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry on rat samples at 1:500 (fig 3). Nat Commun (2020) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; mouse; 1:1000; loading ...
MilliporeSigma Map2 antibody (Sigma-Aldrich, M9942) was used in immunohistochemistry on mouse samples at 1:1000. elife (2019) ncbi
mouse monoclonal (AP-20)
  • immunohistochemistry - frozen section; rat; loading ...; fig 1f
  • immunohistochemistry - frozen section; mouse; loading ...; fig 1b
MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunohistochemistry - frozen section on rat samples (fig 1f) and in immunohistochemistry - frozen section on mouse samples (fig 1b). PLoS Biol (2019) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; loading ...; fig 1f
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on mouse samples (fig 1f). Genes Dev (2019) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; mouse; 1:1000; loading ...; fig 10a
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry - paraffin section on mouse samples at 1:1000 (fig 10a). J Comp Neurol (2019) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; 1:1500; loading ...; fig s2a
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunocytochemistry on rat samples at 1:1500 (fig s2a). Sci Rep (2018) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; human; loading ...; fig 3b
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry on human samples (fig 3b). J Biol Chem (2018) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; loading ...; fig 5a
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunocytochemistry on rat samples (fig 5a). Dev Cell (2018) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; domestic sheep; 1:500; loading ...; fig 6a, 6b
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry - paraffin section on domestic sheep samples at 1:500 (fig 6a, 6b). J Neuroinflammation (2018) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; mouse; 1:500; fig 4d
MilliporeSigma Map2 antibody (Sigma-Aldrich, M1406) was used in immunocytochemistry on mouse samples at 1:500 (fig 4d). Exp Mol Med (2018) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 1:750; loading ...; fig 1a
MilliporeSigma Map2 antibody (Sigma-Aldrich, M9942) was used in immunocytochemistry on human samples at 1:750 (fig 1a). Nat Neurosci (2018) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; rat; 1:200; loading ...; fig 1
In order to characterize juxtanodin in retinal pigment epithelial cells and its function, MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry on rat samples at 1:200 (fig 1). J Comp Neurol (2018) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:400; loading ...; fig 6
In order to study the role of succinyl-CoA synthase ADP-forming beta subunit in mtDNA stability and mitochondrial dynamics, MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunocytochemistry on mouse samples at 1:400 (fig 6). Sci Rep (2017) ncbi
mouse monoclonal (AP-20)
  • immunohistochemistry - frozen section; mouse; 1:500; loading ...; fig 4e
  • immunocytochemistry; mouse; 1:100; loading ...; fig s2d
  • western blot; mouse; loading ...; fig s2f
In order to report that the anaphase-promoting complex/cyclosome-mediated degradation of Rock2 maintains the dendritic network, memory formation, and neuronal survival, MilliporeSigma Map2 antibody (Sigma-Aldrich, AP-20) was used in immunohistochemistry - frozen section on mouse samples at 1:500 (fig 4e), in immunocytochemistry on mouse samples at 1:100 (fig s2d) and in western blot on mouse samples (fig s2f). Proc Natl Acad Sci U S A (2017) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:500; loading ...; fig 3
In order to see that the co-transplantation of astrocytes and neural stem cells is more effective than neural stem cells alone in the production of neurons following ischemic stroke, MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on mouse samples at 1:500 (fig 3). Exp Ther Med (2017) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; 1:500; loading ...
In order to assess the localization of hyaluronan and hyaluronan synthases during the development of cortical neurons, MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on rat samples at 1:500. Sci Rep (2017) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; rat; 1:1000; loading ...; fig 5d
In order to analyze the mechanistic relationship between sirtuin 2 and alpha-synuclein in Parkinson's disease, MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry on rat samples at 1:1000 (fig 5d). PLoS Biol (2017) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; mouse; 1:1000; loading ...; fig 5e
In order to clarify how actin isoforms modulate the axons of developing motoneurons, MilliporeSigma Map2 antibody (Sigma-Aldrich, M1406) was used in immunocytochemistry on mouse samples at 1:1000 (fig 5e). J Cell Biol (2017) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; human; 1:500; loading ...; fig 5c
In order to analyze the impact of alpha-synuclein on mitochondrial responses to oxidative stress in neural cells, MilliporeSigma Map2 antibody (Sigma-Aldrich, M1406) was used in immunocytochemistry on human samples at 1:500 (fig 5c). Sci Rep (2017) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:1500; loading ...; fig S7
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on mouse samples at 1:1500 (fig S7). Proc Natl Acad Sci U S A (2017) ncbi
mouse monoclonal (AP-20)
  • immunohistochemistry - frozen section; human; loading ...; fig 3d
In order to quantify biologically valuable micronutrients incorporated and distributed into the exogenously developing brain using cerebral organoids derived from human pluripotent stem cells, MilliporeSigma Map2 antibody (Sigma-Aldrich, M1406) was used in immunohistochemistry - frozen section on human samples (fig 3d). Peerj (2017) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 2b
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry - paraffin section on mouse samples (fig 2b). Sci Rep (2017) ncbi
mouse monoclonal (HM-2)
  • western blot; mouse; 1:2000; loading ...; fig 3b
In order to discover that repeated exposure of striatal GABAergic spiny projecting neurons to D-amphetamine decreases global striatal mRNA translation, MilliporeSigma Map2 antibody (Sigma, M4403) was used in western blot on mouse samples at 1:2000 (fig 3b). Front Mol Neurosci (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; mouse; loading ...; fig s4c
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry on mouse samples (fig s4c). Sci Rep (2017) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; human; 1:1000; loading ...; fig st4
In order to describe a small-molecule method to improve induction of early-born cortical neurons, MilliporeSigma Map2 antibody (Sigma-Aldrich, M1406) was used in immunocytochemistry on human samples at 1:1000 (fig st4). Nat Biotechnol (2017) ncbi
mouse monoclonal (HM-2)
  • western blot; mouse; 1:250; loading ...; fig s1a
In order to elucidate how nuclear editing of substrates contributes to neuronal function and brain development, MilliporeSigma Map2 antibody (Sigma, HM-2) was used in western blot on mouse samples at 1:250 (fig s1a). J Cell Sci (2017) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - free floating section; mouse; 1:200; loading ...; fig 5b
  • immunocytochemistry; rat; 1:200; loading ...; fig 5d
MilliporeSigma Map2 antibody (Sigma, M-4403) was used in immunohistochemistry - free floating section on mouse samples at 1:200 (fig 5b) and in immunocytochemistry on rat samples at 1:200 (fig 5d). elife (2017) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:1000; loading ...; fig S1
In order to assess the effects of autophagy induction on neurons with alpha-synuclein inclusions by a starvation and mTOR-independent autophagy induction mechanism, MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on mouse samples at 1:1000 (fig S1). Redox Biol (2017) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; mouse; 1:400; loading ...; fig 7e,7f
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry - frozen section on mouse samples at 1:400 (fig 7e,7f). J Mol Neurosci (2017) ncbi
mouse monoclonal (AP-20)
  • immunohistochemistry; human; 1:3000; loading ...; fig 2c
In order to suggest that CASP9 germline mutations may promote the development of brain tumors, MilliporeSigma Map2 antibody (Sigma, AP-20) was used in immunohistochemistry on human samples at 1:3000 (fig 2c). Brain Pathol (2018) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; loading ...; fig s1a
In order to study brain apoE regulation, MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunocytochemistry on human samples (fig s1a). Cell Chem Biol (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; cat; 1:100; fig 3c
In order to elucidate how feline panleukopenia virus maintains host cells in the S phase, MilliporeSigma Map2 antibody (Sigma Aldrich, M4403) was used in immunohistochemistry - paraffin section on cat samples at 1:100 (fig 3c). Cell Cycle (2016) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; 1:1000; loading ...; fig 1c
In order to use a click chemistry method to label the newly synthesized RNA in cultured hippocampal neurons and intact larval zebrafish brain, MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunocytochemistry on rat samples at 1:1000 (fig 1c). RNA Biol (2017) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; 1:200; loading ...; fig 1c
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on rat samples at 1:200 (fig 1c). Oncotarget (2016) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; human; 1:500; tbl 2
In order to develop a brain-on-chip model to study neural differentiation and maturation, MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunocytochemistry on human samples at 1:500 (tbl 2). Lab Chip (2016) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 1:1000; fig 6b
In order to optimize the differentiation of human pluripotent embryonal carcinoma cells, MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on human samples at 1:1000 (fig 6b). Dev Growth Differ (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; rat; 1:2000; fig s5
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry - paraffin section on rat samples at 1:2000 (fig s5). Sci Rep (2016) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; rat; 1:500
In order to visualize dendritic Golgi outposts in fixed and living neurons, MilliporeSigma Map2 antibody (Sigma-Aldrich, M1406) was used in immunocytochemistry on rat samples at 1:500. Methods Mol Biol (2016) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; human; 1:200; loading ...; tbl s4
MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunocytochemistry on human samples at 1:200 (tbl s4). Stem Cell Res (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; mouse; fig 8
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry on mouse samples (fig 8). Sci Rep (2016) ncbi
mouse monoclonal (AP-20)
  • immunohistochemistry - frozen section; mouse; 1:2000; fig 3
In order to study recapitulation of SCA7 pathology and promotion of accumulation of the FUS/TLS and MBNL1 RNA-binding proteins by lentiviral vector-mediated overexpression of mutant ataxin-7, MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunohistochemistry - frozen section on mouse samples at 1:2000 (fig 3). Mol Neurodegener (2016) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:500
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunocytochemistry on mouse samples at 1:500. Biomed Res Int (2016) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:1000; fig 2
In order to assess induction of synaptic impairment and memory deficit by calcieurin-mediated inactivation of nuclear CaMKIV/CREB signaling due to tau accumulation, MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on mouse samples at 1:1000 (fig 2). Proc Natl Acad Sci U S A (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; mouse; 1:50; loading ...; fig 1a
  • immunohistochemistry - paraffin section; rhesus macaque; 1:50; loading ...; fig 1c
  • immunohistochemistry - paraffin section; human; 1:50; loading ...; fig 1e
In order to compared expression of apoptosis-inducing-factor in nigral dopamine neurons of mice, monkeys, and humans, MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry - paraffin section on mouse samples at 1:50 (fig 1a), in immunohistochemistry - paraffin section on rhesus macaque samples at 1:50 (fig 1c) and in immunohistochemistry - paraffin section on human samples at 1:50 (fig 1e). Mov Disord (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; mouse; loading ...; fig s3a
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry on mouse samples (fig s3a). Nature (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; mouse; 1:500; fig 6
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry - paraffin section on mouse samples at 1:500 (fig 6). PLoS ONE (2016) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; mouse; 1:1000; fig s5c
  • western blot; mouse; 1:1000; fig 7b
MilliporeSigma Map2 antibody (Sigma-Aldrich, M1406) was used in immunocytochemistry on mouse samples at 1:1000 (fig s5c) and in western blot on mouse samples at 1:1000 (fig 7b). Proc Natl Acad Sci U S A (2016) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:1000; fig s5d
  • western blot; mouse; 1:1000; fig 7b
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunocytochemistry on mouse samples at 1:1000 (fig s5d) and in western blot on mouse samples at 1:1000 (fig 7b). Proc Natl Acad Sci U S A (2016) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:400; fig 2
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on mouse samples at 1:400 (fig 2). Nat Commun (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; human; fig 4
  • western blot; human; fig 1
In order to study alteration of MAP2 splicing in Huntington's disease, MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry - paraffin section on human samples (fig 4) and in western blot on human samples (fig 1). Brain Pathol (2017) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; human; 1:200; fig 2
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry - paraffin section on human samples at 1:200 (fig 2). Front Neuroanat (2016) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; human; fig 1b
MilliporeSigma Map2 antibody (Sigma Aldrich, M1406) was used in immunocytochemistry on human samples (fig 1b). PLoS ONE (2016) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; mouse; 1:200; fig 8e
In order to study the sequestering of HR23 and nucleocytoplasmic transport proteins by C9ORF72 poly(GA) aggregates, MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunocytochemistry on mouse samples at 1:200 (fig 8e). Nat Neurosci (2016) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; rat; 1:400; fig 5
In order to analyze regulation of neural progenitor cell differentiation by the miR-20-Rest-Wnt signaling axis, MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunocytochemistry on rat samples at 1:400 (fig 5). Sci Rep (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; human; 1:100; loading ...; tbl 1
In order to examine eosinophilic neuronal cytoplasmic inclusions, MilliporeSigma Map2 antibody (SIGMA, HM-2) was used in immunohistochemistry - paraffin section on human samples at 1:100 (tbl 1). Neuropathology (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; mouse; 1:1000; fig 3
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry on mouse samples at 1:1000 (fig 3). Sci Rep (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - free floating section; rat; 2 ug/ml; fig 3
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry - free floating section on rat samples at 2 ug/ml (fig 3). Front Syst Neurosci (2016) ncbi
mouse monoclonal (AP-20)
  • immunohistochemistry; rat; 1:500; loading ...
In order to use electroconducting microfibers to synergistically stimulate the proliferation and migration of glial progenitor cells, MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunohistochemistry on rat samples at 1:500. Acta Biomater (2016) ncbi
mouse monoclonal (HM-2)
  • western blot; human; fig 1
MilliporeSigma Map2 antibody (Sigma, M4403) was used in western blot on human samples (fig 1). Nat Commun (2016) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; fig s2
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunocytochemistry on rat samples (fig s2). Sci Rep (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; rat; 1:500; fig 2
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry - paraffin section on rat samples at 1:500 (fig 2). Front Cell Neurosci (2015) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; mouse; 1:500; fig 3
MilliporeSigma Map2 antibody (Millipore, M1406) was used in immunocytochemistry on mouse samples at 1:500 (fig 3). Nat Commun (2016) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; rat; 1:500; fig 4
MilliporeSigma Map2 antibody (Sigma-Aldrich, M1406) was used in immunocytochemistry on rat samples at 1:500 (fig 4). PLoS ONE (2015) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; mouse; fig 2
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry on mouse samples (fig 2). Sci Rep (2015) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; rat; 1:500; loading ...; fig 1a
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry on rat samples at 1:500 (fig 1a). J Neurosci (2015) ncbi
mouse monoclonal (AP-20)
  • immunohistochemistry; human; loading ...; fig 2a
MilliporeSigma Map2 antibody (Sigma-Aldrich, M1406) was used in immunohistochemistry on human samples (fig 2a). Methods (2016) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:100; fig 4
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on mouse samples at 1:100 (fig 4). Nat Commun (2015) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 1:1000; fig 4
In order to research the role of increased alpha-synuclein due to SNCA gene triplication and its role in Parkinson stem cells, MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on human samples at 1:1000 (fig 4). Cell Death Dis (2015) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; fig 1
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on rat samples (fig 1). Sci Rep (2015) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; rat; 1:2000; fig s5
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry - paraffin section on rat samples at 1:2000 (fig s5). Development (2015) ncbi
mouse monoclonal (AP-20)
  • immunohistochemistry; human; 1:1000; loading ...; fig 4b
MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunohistochemistry on human samples at 1:1000 (fig 4b). Stem Cells (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; hamsters; 1:300; fig 4
In order to study the lack of impairment of hippocampal-dependent memory in hibernating golden hamsters by tau phosphorylation-associated spine regression, MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry on hamsters samples at 1:300 (fig 4). Hippocampus (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; mouse; 1:500
MilliporeSigma Map2 antibody (Sigma-Aldrich, m4403) was used in immunohistochemistry on mouse samples at 1:500. J Neurosci (2015) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 2 ug/ml; fig 1b
  • immunocytochemistry; rat; 2 ug/ml; fig 1b
  • western blot; rat; 1:2000; fig 5f
In order to characterize the death target of Alzheimer patient amyloid-beta assembly, Na, K-ATPase alpha3, MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on human samples at 2 ug/ml (fig 1b), in immunocytochemistry on rat samples at 2 ug/ml (fig 1b) and in western blot on rat samples at 1:2000 (fig 5f). Proc Natl Acad Sci U S A (2015) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; rat; 1:200
MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunocytochemistry on rat samples at 1:200. Cell J (2015) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:1000; fig s8
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunocytochemistry on mouse samples at 1:1000 (fig s8). Nat Med (2015) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; human; 1:100
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry - paraffin section on human samples at 1:100. Acta Neuropathol (2015) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; 1:500; fig 3
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on rat samples at 1:500 (fig 3). Front Cell Neurosci (2015) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 1:200; fig 4c
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunocytochemistry on human samples at 1:200 (fig 4c). Cell Death Dis (2015) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 1:500; fig 2Ag
MilliporeSigma Map2 antibody (Sigma-Aldrich, M9942) was used in immunocytochemistry on human samples at 1:500 (fig 2Ag). Eur J Hum Genet (2016) ncbi
mouse monoclonal (AP-20)
  • immunohistochemistry - frozen section; mouse; 1:500; loading ...; fig S2d
MilliporeSigma Map2 antibody (Sigma, clone AP-20) was used in immunohistochemistry - frozen section on mouse samples at 1:500 (fig S2d). PLoS ONE (2015) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; human; 1:10,000; loading ...; fig 5b
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry on human samples at 1:10,000 (fig 5b). Front Neurosci (2015) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; rat; 1.5 ug/ml; loading ...; fig 6a
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry on rat samples at 1.5 ug/ml (fig 6a). PLoS ONE (2015) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; human; 1:500
MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunocytochemistry on human samples at 1:500. Brain Pathol (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; mouse
  • western blot; mouse
MilliporeSigma Map2 antibody (Sigma-Aldrich, M9942) was used in immunohistochemistry - paraffin section on mouse samples and in western blot on mouse samples . J Neurosci (2015) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; rat; 1:1000
In order to study the localization of flotillin-1 in the rat visual cortex during development, MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry on rat samples at 1:1000. Neuroscience (2015) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; fig s4
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunocytochemistry on mouse samples (fig s4). Sci Rep (2015) ncbi
mouse monoclonal (HM-2)
  • western blot; mouse; 1:5000
In order to study the effect of phosphorylation on synGAP activity, MilliporeSigma Map2 antibody (Sigma, M4403) was used in western blot on mouse samples at 1:5000. J Biol Chem (2015) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; mouse
In order to report that ezrin is required for Ras activation, MilliporeSigma Map2 antibody (Sigma, AP-20) was used in immunocytochemistry on mouse samples . Hum Mutat (2015) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; mouse; 1:250
In order to investigate their role Nurr1 in the generation of dopaminergic neurons, MilliporeSigma Map2 antibody (Sigma, M1406) was used in immunocytochemistry on mouse samples at 1:250. Dev Neurobiol (2015) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; 1:1000; fig s4
MilliporeSigma Map2 antibody (Sigma, HM-2) was used in immunocytochemistry on rat samples at 1:1000 (fig s4). PLoS ONE (2014) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; rat; 1:2000
MilliporeSigma Map2 antibody (Sigma-Aldrich, M9942) was used in immunohistochemistry - frozen section on rat samples at 1:2000. Adv Alzheimer Dis (2014) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; rat; 1:500
In order to characterize the incidence, distribution, and cellular composition of the ectopic colonies arising from transplanted fetal neuronal stem cells in the nervous system, MilliporeSigma Map2 antibody (Sigma-Aldrich, M9942) was used in immunohistochemistry - frozen section on rat samples at 1:500. J Neurosci (2014) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; 1:200
  • immunocytochemistry; mouse; 1:200
In order to study the role of dysbindin in the regulation of dendritic spine dynamics, MilliporeSigma Map2 antibody (Sigma-Aldrich, M9942) was used in immunocytochemistry on rat samples at 1:200 and in immunocytochemistry on mouse samples at 1:200. J Neurosci (2014) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; human; 1:500; fig 4
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry on human samples at 1:500 (fig 4). PLoS ONE (2014) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; fig 2
In order to study microfluidic-based reconstructed neuronal network and beta-amyloic inducing a dying-back process and remote trans-synaptic alterations, MilliporeSigma Map2 antibody (sigma, M4403) was used in immunocytochemistry on mouse samples (fig 2). Acta Neuropathol Commun (2014) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; 1:100
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunocytochemistry on rat samples at 1:100. Pflugers Arch (2015) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:1000; fig 3
MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunocytochemistry on mouse samples at 1:1000 (fig 3). Acta Neuropathol (2014) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; human
In order to study the relation between human cortical formation and impaired sonic hedgehog signaling, MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry - frozen section on human samples . Cereb Cortex (2016) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; mouse; 1:100; fig 6
In order to study the effect of astrocyte reactivity on neuronal integrity and synapse recovery following extracranial facial nerve transection, MilliporeSigma Map2 antibody (Sigma-Aldrich, HM-2) was used in immunohistochemistry - frozen section on mouse samples at 1:100 (fig 6). Nat Commun (2014) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; human; 1:3000
In order to describe the post-mortem neuropathological characteristics of five EHEC patients, MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry on human samples at 1:3000. Brain Pathol (2015) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 1:200
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on human samples at 1:200. J Vis Exp (2014) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; mouse; 1:150
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry on mouse samples at 1:150. Neurobiol Dis (2014) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; human; 1:100
In order to investigate the association of eosinophilic neuronal cytoplasmic inclusions with stress granules and autophagy in two clinical cases, MilliporeSigma Map2 antibody (SIGMA, HM2) was used in immunohistochemistry - paraffin section on human samples at 1:100. Neuropathology (2014) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; rat; 1:1000
In order to test if different MKL1 isoforms differ in their subcellular localization, transcriptional activity, and effect on dendritic number and axonal length, MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on rat samples at 1:1000. Neuroreport (2014) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; human; 1:100
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on human samples at 1:100. J Neurosci Methods (2014) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; rat
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry - paraffin section on rat samples . Mol Cancer Res (2014) ncbi
mouse monoclonal (HM-2)
  • western blot; rhesus macaque; 1:500
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in western blot on rhesus macaque samples at 1:500. Neurosci Lett (2014) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; mouse; fig 8
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry - frozen section on mouse samples (fig 8). PLoS ONE (2013) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; mouse
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry - frozen section on mouse samples . Acta Neuropathol Commun (2013) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - free floating section; mouse
In order to investigate the role of microglial derived tumor necrosis factor alpha in neuronal cell cycle progression, MilliporeSigma Map2 antibody (Sigma, M9942) was used in immunohistochemistry - free floating section on mouse samples . Neurobiol Dis (2014) ncbi
mouse monoclonal (AP-20)
  • immunocytochemistry; rat; 1:50
MilliporeSigma Map2 antibody (Sigma-Aldrich, AP20) was used in immunocytochemistry on rat samples at 1:50. Mol Pharmacol (2013) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; mouse
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry on mouse samples . J Neurosci (2013) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - free floating section; human; 1:500
  • immunocytochemistry; human; 1:500
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry - free floating section on human samples at 1:500 and in immunocytochemistry on human samples at 1:500. Glia (2013) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; mouse
In order to investigate the role of Src-like adaptor protein in the context of NMDA receptor signaling, MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry on mouse samples . Mol Cell Biol (2013) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - free floating section; rat; 1:25,000
In order to study filamin A and its anatomical and subcellular localization in the brain of mature rats, MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry - free floating section on rat samples at 1:25,000. J Comp Neurol (2012) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:400
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on mouse samples at 1:400. Age (Dordr) (2013) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; mouse; fig 4
  • immunocytochemistry; mouse; fig 3
In order to investigate the role of caspase 8 in acute brain injury in mouse models, MilliporeSigma Map2 antibody (Sigma-Aldrich, HM-2) was used in immunohistochemistry - paraffin section on mouse samples (fig 4) and in immunocytochemistry on mouse samples (fig 3). PLoS ONE (2011) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; mouse; 1:5000
  • western blot; mouse; 1:500
In order to investigate the role of PCP 4 in neural abnormalities in Down syndrome murine model, MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry - frozen section on mouse samples at 1:5000 and in western blot on mouse samples at 1:500. J Comp Neurol (2011) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; rat; 1:500
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry on rat samples at 1:500. J Comp Neurol (2010) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; mouse; 1:1000
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry - frozen section on mouse samples at 1:1000. J Comp Neurol (2010) ncbi
mouse monoclonal (HM-2)
  • immunocytochemistry; mouse; 1:1000
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunocytochemistry on mouse samples at 1:1000. J Comp Neurol (2009) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; mouse; 1:1000
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry - frozen section on mouse samples at 1:1000. J Comp Neurol (2009) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; rat; 1:500
In order to localize alpha-taxilin in the rat central nervous system, MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry - frozen section on rat samples at 1:500. J Comp Neurol (2008) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; rat; 1:500
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry on rat samples at 1:500. J Comp Neurol (2007) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - paraffin section; mouse; 1:5000
  • immunocytochemistry; mouse; 1:500
  • western blot; mouse; 1:20,000
MilliporeSigma Map2 antibody (Sigma-Aldrich, M4403) was used in immunohistochemistry - paraffin section on mouse samples at 1:5000, in immunocytochemistry on mouse samples at 1:500 and in western blot on mouse samples at 1:20,000. J Comp Neurol (2007) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry - frozen section; mouse; 1:800
In order to study the role of hippocampus subventricular zone progenitors in the development of dentate gyrus, corpus callosum, fimbria, and cerebral cortex, MilliporeSigma Map2 antibody (Sigma, M 4403) was used in immunohistochemistry - frozen section on mouse samples at 1:800. J Comp Neurol (2006) ncbi
mouse monoclonal (HM-2)
  • immunohistochemistry; mouse; 1:100
MilliporeSigma Map2 antibody (Sigma, M4403) was used in immunohistochemistry on mouse samples at 1:100. J Comp Neurol (2005) ncbi
BD Biosciences
mouse monoclonal (AP20)
  • immunohistochemistry - free floating section; human; 1:500; loading ...; fig 8a
BD Biosciences Map2 antibody (BD Bioscience, 556320) was used in immunohistochemistry - free floating section on human samples at 1:500 (fig 8a). Exp Neurol (2019) ncbi
mouse monoclonal (AP20)
  • immunohistochemistry - frozen section; mouse; 1:500; loading ...; fig s1c
BD Biosciences Map2 antibody (BD Biosciences, 566320) was used in immunohistochemistry - frozen section on mouse samples at 1:500 (fig s1c). J Pineal Res (2019) ncbi
mouse monoclonal (18/MAP2B)
  • immunocytochemistry; rat; loading ...; fig 3d
BD Biosciences Map2 antibody (BD Biosciences, 560399) was used in immunocytochemistry on rat samples (fig 3d). Nat Commun (2018) ncbi
mouse monoclonal (18/MAP2B)
  • western blot; mouse; loading ...; tbl 1
In order to elucidate the contribution of the Sac phosphatase domain of Synaptojanin 1 to neurological symptoms, BD Biosciences Map2 antibody (BD biosciences, 610460) was used in western blot on mouse samples (tbl 1). Neuron (2017) ncbi
mouse monoclonal (18/MAP2B)
  • western blot; mouse; fig 7
In order to analyze selective partitioning into complexes and supercomplexes during synapse maturation by NMDA receptors, BD Biosciences Map2 antibody (BD Biosciences, 610460) was used in western blot on mouse samples (fig 7). Nat Commun (2016) ncbi
mouse monoclonal (18/MAP2B)
  • flow cytometry; rat; fig 6
In order to analyze regulation of neural progenitor cell differentiation by the miR-20-Rest-Wnt signaling axis, BD Biosciences Map2 antibody (Becton, Dickinson and Company, 560399) was used in flow cytometry on rat samples (fig 6). Sci Rep (2016) ncbi
mouse monoclonal (AP20)
  • immunocytochemistry; human; fig s1
BD Biosciences Map2 antibody (BD Pharmingen, 556320) was used in immunocytochemistry on human samples (fig s1). PLoS ONE (2015) ncbi
mouse monoclonal (AP20)
  • ELISA; human; fig 2
BD Biosciences Map2 antibody (BD Bioscience, clone AP20) was used in ELISA on human samples (fig 2). Neurocrit Care (2015) ncbi
mouse monoclonal (AP20)
  • immunocytochemistry; human; 1:500
BD Biosciences Map2 antibody (BD Bioscience, 556320) was used in immunocytochemistry on human samples at 1:500. Stem Cell Rev (2013) ncbi
Biosensis
chicken polyclonal
  • immunohistochemistry; mouse; loading ...; fig 1b
Biosensis Map2 antibody (Biosensis, C-1382-50) was used in immunohistochemistry on mouse samples (fig 1b). Science (2019) ncbi
chicken polyclonal
  • immunocytochemistry; rat; 1:5000; loading ...; fig 1a
In order to develop methods to study vesicle-associated proteins and exocytosis in stellate astrocytes, Biosensis Map2 antibody (Biosensis, C-1382-50) was used in immunocytochemistry on rat samples at 1:5000 (fig 1a). J Gen Physiol (2017) ncbi
Articles Reviewed
  1. Ban Y, Yu T, Feng B, Lorenz C, Wang X, Baker C, et al. Prickle promotes the formation and maintenance of glutamatergic synapses by stabilizing the intercellular planar cell polarity complex. Sci Adv. 2021;7:eabh2974 pubmed publisher
  2. Nies S, Takahashi H, Herber C, Huttner A, Chase A, Strittmatter S. Spreading of Alzheimer tau seeds is enhanced by aging and template matching with limited impact of amyloid-β. J Biol Chem. 2021;297:101159 pubmed publisher
  3. de Jong J, Llapashtica C, Genestine M, Strauss K, Provenzano F, Sun Y, et al. Cortical overgrowth in a preclinical forebrain organoid model of CNTNAP2-associated autism spectrum disorder. Nat Commun. 2021;12:4087 pubmed publisher
  4. Hu Y, Li C, Wang X, Chen W, Qian Y, Dai X. TREM2, Driving the Microglial Polarization, Has a TLR4 Sensitivity Profile After Subarachnoid Hemorrhage. Front Cell Dev Biol. 2021;9:693342 pubmed publisher
  5. Wu Y, Shao W, Todd T, Tong J, Yue M, Koga S, et al. Microglial lysosome dysfunction contributes to white matter pathology and TDP-43 proteinopathy in GRN-associated FTD. Cell Rep. 2021;36:109581 pubmed publisher
  6. Albanese F, Mercatelli D, Finetti L, Lamonaca G, Pizzi S, Shimshek D, et al. Constitutive silencing of LRRK2 kinase activity leads to early glucocerebrosidase deregulation and late impairment of autophagy in vivo. Neurobiol Dis. 2021;159:105487 pubmed publisher
  7. Araya A, Gallegos S, Viveros R, San Martin L, Muñoz B, Harvey R, et al. Presence of ethanol-sensitive and ethanol-insensitive glycine receptors in the ventral tegmental area and prefrontal cortex in mice. Br J Pharmacol. 2021;178:4691-4707 pubmed publisher
  8. Emmenegger M, De Cecco E, Hruska Plochan M, Eninger T, Schneider M, Barth M, et al. LAG3 is not expressed in human and murine neurons and does not modulate α-synucleinopathies. EMBO Mol Med. 2021;13:e14745 pubmed publisher
  9. Swarnkar S, Avchalumov Y, Espadas I, Grinman E, Liu X, Raveendra B, et al. Molecular motor protein KIF5C mediates structural plasticity and long-term memory by constraining local translation. Cell Rep. 2021;36:109369 pubmed publisher
  10. Modafferi S, Zhong X, Kleensang A, Murata Y, Fagiani F, Pamies D, et al. Gene-Environment Interactions in Developmental Neurotoxicity: a Case Study of Synergy between Chlorpyrifos and CHD8 Knockout in Human BrainSpheres. Environ Health Perspect. 2021;129:77001 pubmed publisher
  11. Lin K, Bieri G, Gontier G, Müller S, Smith L, Snethlage C, et al. MHC class I H2-Kb negatively regulates neural progenitor cell proliferation by inhibiting FGFR signaling. PLoS Biol. 2021;19:e3001311 pubmed publisher
  12. Zhang J, Wu N, Wang S, Yao Z, Xiao F, Lu J, et al. Neuronal loss and microgliosis are restricted to the core of Aβ deposits in mouse models of Alzheimer's disease. Aging Cell. 2021;20:e13380 pubmed publisher
  13. Haytural H, Jordà Siquier T, Winblad B, Mulle C, Tjernberg L, Granholm A, et al. Distinctive alteration of presynaptic proteins in the outer molecular layer of the dentate gyrus in Alzheimer's disease. Brain Commun. 2021;3:fcab079 pubmed publisher
  14. Galán Ganga M, Rodríguez Cueto C, Merchán Rubira J, Hernandez F, Avila J, Posada Ayala M, et al. Cannabinoid receptor CB2 ablation protects against TAU induced neurodegeneration. Acta Neuropathol Commun. 2021;9:90 pubmed publisher
  15. Seol B, Kim Y, Cho Y. Modeling Sialidosis with Neural Precursor Cells Derived from Patient-Derived Induced Pluripotent Stem Cells. Int J Mol Sci. 2021;22: pubmed publisher
  16. Park J, Kam T, Lee S, Park H, Oh Y, Kwon S, et al. Blocking microglial activation of reactive astrocytes is neuroprotective in models of Alzheimer's disease. Acta Neuropathol Commun. 2021;9:78 pubmed publisher
  17. Trinkaus V, Riera Tur I, Martinez Sanchez A, Bäuerlein F, Guo Q, Arzberger T, et al. In situ architecture of neuronal α-Synuclein inclusions. Nat Commun. 2021;12:2110 pubmed publisher
  18. Yoshinaga S, Shin M, Kitazawa A, Ishii K, Tanuma M, Kasai A, et al. Comprehensive characterization of migration profiles of murine cerebral cortical neurons during development using FlashTag labeling. iScience. 2021;24:102277 pubmed publisher
  19. Inak G, Rybak Wolf A, Lisowski P, Pentimalli T, Jüttner R, Glažar P, et al. Defective metabolic programming impairs early neuronal morphogenesis in neural cultures and an organoid model of Leigh syndrome. Nat Commun. 2021;12:1929 pubmed publisher
  20. Courtland J, Bradshaw T, Waitt G, Soderblom E, Ho T, Rajab A, et al. Genetic disruption of WASHC4 drives endo-lysosomal dysfunction and cognitive-movement impairments in mice and humans. elife. 2021;10: pubmed publisher
  21. Sando R, Sudhof T. Latrophilin GPCR signaling mediates synapse formation. elife. 2021;10: pubmed publisher
  22. Trujillo C, Rice E, Schaefer N, Chaim I, Wheeler E, Madrigal A, et al. Reintroduction of the archaic variant of NOVA1 in cortical organoids alters neurodevelopment. Science. 2021;371: pubmed publisher
  23. Li Y, Ritchie E, Steinke C, Qi C, Chen L, Zheng B, et al. Activation of MAP3K DLK and LZK in Purkinje cells causes rapid and slow degeneration depending on signaling strength. elife. 2021;10: pubmed publisher
  24. Morales Garcia J, Calleja Conde J, Lopez Moreno J, Alonso Gil S, Sanz Sancristobal M, Riba J, et al. N,N-dimethyltryptamine compound found in the hallucinogenic tea ayahuasca, regulates adult neurogenesis in vitro and in vivo. Transl Psychiatry. 2020;10:331 pubmed publisher
  25. Gao J, Wu Y, He D, Zhu X, Li H, Liu H, et al. Anti-aging effects of Ribes meyeri anthocyanins on neural stem cells and aging mice. Aging (Albany NY). 2020;12:17738-17753 pubmed publisher
  26. Yang C, Qiu Y, Qing Y, Xu J, Dai W, Hu X, et al. Synergistic effect of electric stimulation and mesenchymal stem cells against Parkinson's disease. Aging (Albany NY). 2020;12:16062-16071 pubmed publisher
  27. Sase S, Almad A, Boecker C, Guedes Dias P, Li J, Takanohashi A, et al. TUBB4A mutations result in both glial and neuronal degeneration in an H-ABC leukodystrophy mouse model. elife. 2020;9: pubmed publisher
  28. Mondal B, Jin H, Kallappagoudar S, Sedkov Y, Martinez T, Sentmanat M, et al. The histone deacetylase complex MiDAC regulates a neurodevelopmental gene expression program to control neurite outgrowth. elife. 2020;9: pubmed publisher
  29. Zhang W, Zhou M, Lu W, Gong J, Gao F, Li Y, et al. CNTNAP4 deficiency in dopaminergic neurons initiates parkinsonian phenotypes. Theranostics. 2020;10:3000-3021 pubmed publisher
  30. Sarkar S, Li Y, Mirzaei R, Rawji K, Poon C, Wang J, et al. Demeclocycline Reduces the Growth of Human Brain Tumor-Initiating Cells: Direct Activity and Through Monocytes. Front Immunol. 2020;11:272 pubmed publisher
  31. Wakhloo D, Scharkowski F, Curto Y, Javed Butt U, Bansal V, Steixner Kumar A, et al. Functional hypoxia drives neuroplasticity and neurogenesis via brain erythropoietin. Nat Commun. 2020;11:1313 pubmed publisher
  32. McCabe M, Cullen E, Barrows C, Shore A, Tooke K, Laprade K, et al. Genetic inactivation of mTORC1 or mTORC2 in neurons reveals distinct functions in glutamatergic synaptic transmission. elife. 2020;9: pubmed publisher
  33. Rodriguez Ortiz C, Prieto G, Martini A, Forner S, Trujillo Estrada L, LaFerla F, et al. miR-181a negatively modulates synaptic plasticity in hippocampal cultures and its inhibition rescues memory deficits in a mouse model of Alzheimer's disease. Aging Cell. 2020;19:e13118 pubmed publisher
  34. Zeng S, Bai J, Jiang H, Zhu J, Fu C, He M, et al. Treatment With Liraglutide Exerts Neuroprotection After Hypoxic-Ischemic Brain Injury in Neonatal Rats via the PI3K/AKT/GSK3β Pathway. Front Cell Neurosci. 2019;13:585 pubmed publisher
  35. Hughes C, Choi M, Yi J, Kim S, Drews A, George Hyslop P, et al. Beta amyloid aggregates induce sensitised TLR4 signalling causing long-term potentiation deficit and rat neuronal cell death. Commun Biol. 2020;3:79 pubmed publisher
  36. Wang X, Ma M, Zhou L, Jiang X, Hao M, Teng R, et al. Autonomic ganglionic injection of α-synuclein fibrils as a model of pure autonomic failure α-synucleinopathy. Nat Commun. 2020;11:934 pubmed publisher
  37. Potratz M, Zaeck L, Christen M, Te Kamp V, Klein A, Nolden T, et al. Astrocyte Infection during Rabies Encephalitis Depends on the Virus Strain and Infection Route as Demonstrated by Novel Quantitative 3D Analysis of Cell Tropism. Cells. 2020;9: pubmed publisher
  38. Shibahara T, Ago T, Nakamura K, Tachibana M, Yoshikawa Y, Komori M, et al. Pericyte-Mediated Tissue Repair through PDGFRβ Promotes Peri-Infarct Astrogliosis, Oligodendrogenesis, and Functional Recovery after Acute Ischemic Stroke. Eneuro. 2020;7: pubmed publisher
  39. Polis B, Srikanth K, Gurevich V, Bloch N, Gil Henn H, Samson A. Arginase Inhibition Supports Survival and Differentiation of Neuronal Precursors in Adult Alzheimer's Disease Mice. Int J Mol Sci. 2020;21: pubmed publisher
  40. Moruno Manchon J, Lejault P, Wang Y, McCauley B, Honarpisheh P, Morales Scheihing D, et al. Small-molecule G-quadruplex stabilizers reveal a novel pathway of autophagy regulation in neurons. elife. 2020;9: pubmed publisher
  41. Kjell J, Fischer Sternjak J, Thompson A, Friess C, Sticco M, Salinas F, et al. Defining the Adult Neural Stem Cell Niche Proteome Identifies Key Regulators of Adult Neurogenesis. Cell Stem Cell. 2020;26:277-293.e8 pubmed publisher
  42. Hou K, Li G, Zhao J, Xu B, Zhang Y, Yu J, et al. Bone mesenchymal stem cell-derived exosomal microRNA-29b-3p prevents hypoxic-ischemic injury in rat brain by activating the PTEN-mediated Akt signaling pathway. J Neuroinflammation. 2020;17:46 pubmed publisher
  43. Cicvaric A, Sachernegg H, Stojanovic T, Symmank D, Smani T, Moeslinger T, et al. Podoplanin Gene Disruption in Mice Promotes in vivo Neural Progenitor Cells Proliferation, Selectively Impairs Dentate Gyrus Synaptic Depression and Induces Anxiety-Like Behaviors. Front Cell Neurosci. 2019;13:561 pubmed publisher
  44. Grovola M, Paleologos N, Wofford K, Harris J, Browne K, Johnson V, et al. Mossy cell hypertrophy and synaptic changes in the hilus following mild diffuse traumatic brain injury in pigs. J Neuroinflammation. 2020;17:44 pubmed publisher
  45. Li T, Li K, Zhang S, Wang Y, Xu Y, Cronin S, et al. Overexpression of apoptosis inducing factor aggravates hypoxic-ischemic brain injury in neonatal mice. Cell Death Dis. 2020;11:77 pubmed publisher
  46. Sclip A, Sudhof T. LAR receptor phospho-tyrosine phosphatases regulate NMDA-receptor responses. elife. 2020;9: pubmed publisher
  47. Kielkowski P, Buchsbaum I, Kirsch V, Bach N, Drukker M, Cappello S, et al. FICD activity and AMPylation remodelling modulate human neurogenesis. Nat Commun. 2020;11:517 pubmed publisher
  48. Tanaka H, Homma H, Fujita K, Kondo K, Yamada S, Jin X, et al. YAP-dependent necrosis occurs in early stages of Alzheimer's disease and regulates mouse model pathology. Nat Commun. 2020;11:507 pubmed publisher
  49. Yang F, Yang L, Wataya Kaneda M, Teng L, Katayama I. Epilepsy in a melanocyte-lineage mTOR hyperactivation mouse model: A novel epilepsy model. PLoS ONE. 2020;15:e0228204 pubmed publisher
  50. Trevino A, Sinnott Armstrong N, Andersen J, Yoon S, Huber N, Pritchard J, et al. Chromatin accessibility dynamics in a model of human forebrain development. Science. 2020;367: pubmed publisher
  51. Cha M, Lee K, Lee B. Astroglial changes in the zona incerta in response to motor cortex stimulation in a rat model of chronic neuropathy. Sci Rep. 2020;10:943 pubmed publisher
  52. Nickolls A, Lee M, Espinoza D, Szczot M, Lam R, Wang Q, et al. Transcriptional Programming of Human Mechanosensory Neuron Subtypes from Pluripotent Stem Cells. Cell Rep. 2020;30:932-946.e7 pubmed publisher
  53. Cifelli J, Berg K, Yang J. Benzothiazole amphiphiles promote RasGRF1-associated dendritic spine formation in human stem cell-derived neurons. FEBS Open Bio. 2020;10:386-395 pubmed publisher
  54. Zhu Q, Zhang N, Hu N, Jiang R, Lu H, Xuan A, et al. Neural stem cell transplantation improves learning and memory by protecting cholinergic neurons and restoring synaptic impairment in an amyloid precursor protein/presenilin 1 transgenic mouse model of Alzheimer's disease. Mol Med Rep. 2020;21:1172-1180 pubmed publisher
  55. Marina N, Christie I, Korsak A, Doronin M, Brazhe A, Hosford P, et al. Astrocytes monitor cerebral perfusion and control systemic circulation to maintain brain blood flow. Nat Commun. 2020;11:131 pubmed publisher
  56. Gate D, Saligrama N, Leventhal O, Yang A, Unger M, Middeldorp J, et al. Clonally expanded CD8 T cells patrol the cerebrospinal fluid in Alzheimer's disease. Nature. 2020;577:399-404 pubmed publisher
  57. Evans H, Bodea L, Götz J. Cell-specific non-canonical amino acid labelling identifies changes in the de novo proteome during memory formation. elife. 2020;9: pubmed publisher
  58. Sun A, Yuan Q, Fukuda M, Yu W, Yan H, Lim G, et al. Potassium channel dysfunction in human neuronal models of Angelman syndrome. Science. 2019;366:1486-1492 pubmed publisher
  59. Ercan Herbst E, Ehrig J, Schöndorf D, Behrendt A, Klaus B, Gomez Ramos B, et al. A post-translational modification signature defines changes in soluble tau correlating with oligomerization in early stage Alzheimer's disease brain. Acta Neuropathol Commun. 2019;7:192 pubmed publisher
  60. Herring S, Moon H, Rawal P, Chhibber A, Zhao L. Brain clusterin protein isoforms and mitochondrial localization. elife. 2019;8: pubmed publisher
  61. Ye J, Yin Y, Liu H, Fang L, Tao X, Wei L, et al. Tau inhibits PKA by nuclear proteasome-dependent PKAR2α elevation with suppressed CREB/GluA1 phosphorylation. Aging Cell. 2020;19:e13055 pubmed publisher
  62. Javier Torrent M, Marco S, Rocandio D, Pons Vizcarra M, Janes P, Lackmann M, et al. Presenilin/γ-secretase-dependent EphA3 processing mediates axon elongation through non-muscle myosin IIA. elife. 2019;8: pubmed publisher
  63. Diéguez Hurtado R, Kato K, Giaimo B, Nieminen Kelhä M, Arf H, Ferrante F, et al. Loss of the transcription factor RBPJ induces disease-promoting properties in brain pericytes. Nat Commun. 2019;10:2817 pubmed publisher
  64. Donadoni M, Cicalese S, Sarkar D, Chang S, Sariyer I. Alcohol exposure alters pre-mRNA splicing of antiapoptotic Mcl-1L isoform and induces apoptosis in neural progenitors and immature neurons. Cell Death Dis. 2019;10:447 pubmed publisher
  65. Velasco S, Kedaigle A, Simmons S, Nash A, Rocha M, Quadrato G, et al. Individual brain organoids reproducibly form cell diversity of the human cerebral cortex. Nature. 2019;: pubmed publisher
  66. Rhee H, Shaib A, Rehbach K, Lee C, Seif P, Thomas C, et al. An Autaptic Culture System for Standardized Analyses of iPSC-Derived Human Neurons. Cell Rep. 2019;27:2212-2228.e7 pubmed publisher
  67. Bertrand L, Méroth F, Tournebize M, Leda A, Sun E, Toborek M. Targeting the HIV-infected brain to improve ischemic stroke outcome. Nat Commun. 2019;10:2009 pubmed publisher
  68. Rojek K, Krzemien J, Dolezyczek H, Boguszewski P, Kaczmarek L, Konopka W, et al. Amot and Yap1 regulate neuronal dendritic tree complexity and locomotor coordination in mice. PLoS Biol. 2019;17:e3000253 pubmed publisher
  69. Vogel S, Schäfer C, Hess S, Folz Donahue K, Nelles M, Minassian A, et al. The in vivo timeline of differentiation of engrafted human neural progenitor cells. Stem Cell Res. 2019;37:101429 pubmed publisher
  70. Bieri G, Brahic M, Bousset L, Couthouis J, Kramer N, Ma R, et al. LRRK2 modifies α-syn pathology and spread in mouse models and human neurons. Acta Neuropathol. 2019;137:961-980 pubmed publisher
  71. Giandomenico S, Mierau S, Gibbons G, Wenger L, Masullo L, Sit T, et al. Cerebral organoids at the air-liquid interface generate diverse nerve tracts with functional output. Nat Neurosci. 2019;22:669-679 pubmed publisher
  72. Walton C, Zhang W, Patiño Parrado I, Barrio Alonso E, Garrido J, Frade J. Primary neurons can enter M-phase. Sci Rep. 2019;9:4594 pubmed publisher
  73. Rademacher N, Kuropka B, Kunde S, Wahl M, Freund C, Shoichet S. Intramolecular domain dynamics regulate synaptic MAGUK protein interactions. elife. 2019;8: pubmed publisher
  74. Aprile D, Fruscione F, Baldassari S, Fadda M, Ferrante D, Falace A, et al. TBC1D24 regulates axonal outgrowth and membrane trafficking at the growth cone in rodent and human neurons. Cell Death Differ. 2019;: pubmed publisher
  75. Gasset Rosa F, Lu S, Yu H, Chen C, Melamed Z, Guo L, et al. Cytoplasmic TDP-43 De-mixing Independent of Stress Granules Drives Inhibition of Nuclear Import, Loss of Nuclear TDP-43, and Cell Death. Neuron. 2019;102:339-357.e7 pubmed publisher
  76. Shimojo M, Madara J, Pankow S, Liu X, Yates J, Sudhof T, et al. Synaptotagmin-11 mediates a vesicle trafficking pathway that is essential for development and synaptic plasticity. Genes Dev. 2019;33:365-376 pubmed publisher
  77. Farías G, Fréal A, Tortosa E, Stucchi R, Pan X, Portegies S, et al. Feedback-Driven Mechanisms between Microtubules and the Endoplasmic Reticulum Instruct Neuronal Polarity. Neuron. 2019;102:184-201.e8 pubmed publisher
  78. Dominy S, LYNCH C, Ermini F, Benedyk M, Marczyk A, Konradi A, et al. Porphyromonas gingivalis in Alzheimer's disease brains: Evidence for disease causation and treatment with small-molecule inhibitors. Sci Adv. 2019;5:eaau3333 pubmed publisher
  79. Marchetto M, Hrvoj Mihic B, Kerman B, Yu D, Vadodaria K, Linker S, et al. Species-specific maturation profiles of human, chimpanzee and bonobo neural cells. elife. 2019;8: pubmed publisher
  80. Zheng Y, Liu A, Wang Z, Cao Q, Wang W, Lin L, et al. Inhibition of EHMT1/2 rescues synaptic and cognitive functions for Alzheimer's disease. Brain. 2019;142:787-807 pubmed publisher
  81. Wheeler M, Jaronen M, Covacu R, Zandee S, Scalisi G, Rothhammer V, et al. Environmental Control of Astrocyte Pathogenic Activities in CNS Inflammation. Cell. 2019;176:581-596.e18 pubmed publisher
  82. Lien B, Tuszynski M, Lu P. Astrocytes migrate from human neural stem cell grafts and functionally integrate into the injured rat spinal cord. Exp Neurol. 2019;314:46-57 pubmed publisher
  83. Jilg A, Bechstein P, Saade A, Dick M, Li T, Tosini G, et al. Melatonin modulates daytime-dependent synaptic plasticity and learning efficiency. J Pineal Res. 2019;66:e12553 pubmed publisher
  84. Rangaraju V, Lauterbach M, Schuman E. Spatially Stable Mitochondrial Compartments Fuel Local Translation during Plasticity. Cell. 2019;176:73-84.e15 pubmed publisher
  85. Rajarajan P, Borrman T, Liao W, Schrode N, Flaherty E, Casiño C, et al. Neuron-specific signatures in the chromosomal connectome associated with schizophrenia risk. Science. 2018;362: pubmed publisher
  86. Awasthi A, Ramachandran B, Ahmed S, Benito E, Shinoda Y, Nitzan N, et al. Synaptotagmin-3 drives AMPA receptor endocytosis, depression of synapse strength, and forgetting. Science. 2019;363: pubmed publisher
  87. Kubo A, Misonou H, Matsuyama M, Nomori A, Wada Kakuda S, Takashima A, et al. Distribution of endogenous normal tau in the mouse brain. J Comp Neurol. 2019;527:985-998 pubmed publisher
  88. Wang N, Dhumale P, Chiang J, Püschel A. The Sema3A receptor Plexin-A1 suppresses supernumerary axons through Rap1 GTPases. Sci Rep. 2018;8:15647 pubmed publisher
  89. Rahman A, Weber J, Labin E, Lai C, Prieto A. Developmental expression of Neuregulin-3 in the rat central nervous system. J Comp Neurol. 2019;527:797-817 pubmed publisher
  90. Shen C, Liu Y, Yu H, Gulbranson D, Kogut I, Bilousova G, et al. The N-peptide-binding mode is critical to Munc18-1 function in synaptic exocytosis. J Biol Chem. 2018;293:18309-18317 pubmed publisher
  91. Kaczmarek Hájek K, Zhang J, Kopp R, Grosche A, Rissiek B, Saul A, et al. Re-evaluation of neuronal P2X7 expression using novel mouse models and a P2X7-specific nanobody. elife. 2018;7: pubmed publisher
  92. Ludtmann M, Angelova P, Horrocks M, Choi M, Rodrigues M, Baev A, et al. α-synuclein oligomers interact with ATP synthase and open the permeability transition pore in Parkinson's disease. Nat Commun. 2018;9:2293 pubmed publisher
  93. Fukuoka M, Takahashi M, Fujita H, Chiyo T, Popiel H, Watanabe S, et al. Supplemental Treatment for Huntington's Disease with miR-132 that Is Deficient in Huntington's Disease Brain. Mol Ther Nucleic Acids. 2018;11:79-90 pubmed publisher
  94. Hou W, Nemitz S, Schopper S, Nielsen M, Kessels M, Qualmann B. Arginine Methylation by PRMT2 Controls the Functions of the Actin Nucleator Cobl. Dev Cell. 2018;45:262-275.e8 pubmed publisher
  95. Gussenhoven R, Westerlaken R, Ophelders D, Jobe A, Kemp M, Kallapur S, et al. Chorioamnionitis, neuroinflammation, and injury: timing is key in the preterm ovine fetus. J Neuroinflammation. 2018;15:113 pubmed publisher
  96. Tamaki Y, Shodai A, Morimura T, Hikiami R, Minamiyama S, Ayaki T, et al. Elimination of TDP-43 inclusions linked to amyotrophic lateral sclerosis by a misfolding-specific intrabody with dual proteolytic signals. Sci Rep. 2018;8:6030 pubmed publisher
  97. Zhao X, Peng Z, Long L, Chen N, Zheng H, Deng D, et al. Lentiviral vector delivery of short hairpin RNA to NgR1 promotes nerve regeneration and locomotor recovery in injured rat spinal cord. Sci Rep. 2018;8:5447 pubmed publisher
  98. Wang S, Ko S, Kim Y, Jo S, Lee S, Jung S, et al. Capsaicin upregulates HDAC2 via TRPV1 and impairs neuronal maturation in mice. Exp Mol Med. 2018;50:e455 pubmed publisher
  99. Aneichyk T, Hendriks W, Yadav R, Shin D, Gao D, Vaine C, et al. Dissecting the Causal Mechanism of X-Linked Dystonia-Parkinsonism by Integrating Genome and Transcriptome Assembly. Cell. 2018;172:897-909.e21 pubmed publisher
  100. Liu X, Wu H, Krzisch M, Wu X, Graef J, Muffat J, et al. Rescue of Fragile X Syndrome Neurons by DNA Methylation Editing of the FMR1 Gene. Cell. 2018;172:979-992.e6 pubmed publisher
  101. Victor M, Richner M, Olsen H, Lee S, Monteys A, Ma C, et al. Striatal neurons directly converted from Huntington's disease patient fibroblasts recapitulate age-associated disease phenotypes. Nat Neurosci. 2018;21:341-352 pubmed publisher
  102. Fukuda T, Ishizawa Y, Donai K, Sugano E, Tomita H. The poly-cistronic expression of four transcriptional factors (CRX, RAX, NEURO-D, OTX2) in fibroblasts via retro- or lentivirus causes partial reprogramming into photoreceptor cells. Cell Biol Int. 2018;42:608-614 pubmed publisher
  103. Paik E, O Neil A, Ng S, Sun C, Rubin L. Using intracellular markers to identify a novel set of surface markers for live cell purification from a heterogeneous hIPSC culture. Sci Rep. 2018;8:804 pubmed publisher
  104. Pastuzyn E, Day C, Kearns R, Kyrke Smith M, Taibi A, McCormick J, et al. The Neuronal Gene Arc Encodes a Repurposed Retrotransposon Gag Protein that Mediates Intercellular RNA Transfer. Cell. 2018;172:275-288.e18 pubmed publisher
  105. Wigerius M, Quinn D, Diab A, Clattenburg L, Kolar A, Qi J, et al. The polarity protein Angiomotin p130 controls dendritic spine maturation. J Cell Biol. 2018;217:715-730 pubmed publisher
  106. Yadirgi G, Stickings P, Rajagopal S, Liu Y, Sesardic D. Immuno-detection of cleaved SNAP-25 from differentiated mouse embryonic stem cells provides a sensitive assay for determination of botulinum A toxin and antitoxin potency. J Immunol Methods. 2017;451:90-99 pubmed publisher
  107. Qu X, Yuan F, Corona C, Pasini S, Pero M, Gundersen G, et al. Stabilization of dynamic microtubules by mDia1 drives Tau-dependent Aβ1-42 synaptotoxicity. J Cell Biol. 2017;216:3161-3178 pubmed publisher
  108. Tanabe Y, Naito Y, Vasuta C, Lee A, Soumounou Y, Linhoff M, et al. IgSF21 promotes differentiation of inhibitory synapses via binding to neurexin2?. Nat Commun. 2017;8:408 pubmed publisher
  109. Liang F, Hwang J, Tang N, Hunziker W. Juxtanodin in retinal pigment epithelial cells: Expression and biological activities in regulating cell morphology and actin cytoskeleton organization. J Comp Neurol. 2018;526:205-215 pubmed publisher
  110. Zhao Y, Tian J, Sui S, Yuan X, Chen H, Qu C, et al. Loss of succinyl-CoA synthase ADP-forming β subunit disrupts mtDNA stability and mitochondrial dynamics in neurons. Sci Rep. 2017;7:7169 pubmed publisher
  111. Shi Y, Ping Y, Zhou W, He Z, Chen C, Bian B, et al. Tumour-associated macrophages secrete pleiotrophin to promote PTPRZ1 signalling in glioblastoma stem cells for tumour growth. Nat Commun. 2017;8:15080 pubmed publisher
  112. Mews P, Donahue G, Drake A, Luczak V, Abel T, Berger S. Acetyl-CoA synthetase regulates histone acetylation and hippocampal memory. Nature. 2017;546:381-386 pubmed publisher
  113. Birey F, Andersen J, Makinson C, Islam S, Wei W, Huber N, et al. Assembly of functionally integrated human forebrain spheroids. Nature. 2017;545:54-59 pubmed publisher
  114. Quadrato G, Nguyen T, Macosko E, Sherwood J, Min Yang S, Berger D, et al. Cell diversity and network dynamics in photosensitive human brain organoids. Nature. 2017;545:48-53 pubmed publisher
  115. Bobo Jiménez V, Delgado Esteban M, Angibaud J, Sánchez Morán I, de la Fuente A, Yajeya J, et al. APC/CCdh1-Rock2 pathway controls dendritic integrity and memory. Proc Natl Acad Sci U S A. 2017;114:4513-4518 pubmed publisher
  116. Poulsen E, Iannuzzi F, Rasmussen H, Maier T, Enghild J, Jørgensen A, et al. An Aberrant Phosphorylation of Amyloid Precursor Protein Tyrosine Regulates Its Trafficking and the Binding to the Clathrin Endocytic Complex in Neural Stem Cells of Alzheimer's Disease Patients. Front Mol Neurosci. 2017;10:59 pubmed publisher
  117. Luo L, Guo K, Fan W, Lu Y, Chen L, Wang Y, et al. Niche astrocytes promote the survival, proliferation and neuronal differentiation of co-transplanted neural stem cells following ischemic stroke in rats. Exp Ther Med. 2017;13:645-650 pubmed publisher
  118. Loss O, Stephenson F. Developmental changes in trak-mediated mitochondrial transport in neurons. Mol Cell Neurosci. 2017;80:134-147 pubmed publisher
  119. Han Q, Lin Q, Huang P, Chen M, Hu X, Fu H, et al. Microglia-derived IL-1? contributes to axon development disorders and synaptic deficit through p38-MAPK signal pathway in septic neonatal rats. J Neuroinflammation. 2017;14:52 pubmed publisher
  120. Fowke T, Karunasinghe R, Bai J, Jordan S, Gunn A, Dean J. Hyaluronan synthesis by developing cortical neurons in vitro. Sci Rep. 2017;7:44135 pubmed publisher
  121. Yamanishi E, Hasegawa K, Fujita K, Ichinose S, Yagishita S, Murata M, et al. A novel form of necrosis, TRIAD, occurs in human Huntington's disease. Acta Neuropathol Commun. 2017;5:19 pubmed publisher
  122. de Oliveira R, Vicente Miranda H, Francelle L, Pinho R, Szego E, Martinho R, et al. The mechanism of sirtuin 2-mediated exacerbation of alpha-synuclein toxicity in models of Parkinson disease. PLoS Biol. 2017;15:e2000374 pubmed publisher
  123. Moradi M, Sivadasan R, Saal L, Lüningschrör P, Dombert B, Rathod R, et al. Differential roles of α-, β-, and γ-actin in axon growth and collateral branch formation in motoneurons. J Cell Biol. 2017;216:793-814 pubmed publisher
  124. Cao M, Wu Y, Ashrafi G, McCartney A, Wheeler H, Bushong E, et al. Parkinson Sac Domain Mutation in Synaptojanin 1 Impairs Clathrin Uncoating at Synapses and Triggers Dystrophic Changes in Dopaminergic Axons. Neuron. 2017;93:882-896.e5 pubmed publisher
  125. Menges S, Minakaki G, Schaefer P, Meixner H, Prots I, Schlötzer Schrehardt U, et al. Alpha-synuclein prevents the formation of spherical mitochondria and apoptosis under oxidative stress. Sci Rep. 2017;7:42942 pubmed publisher
  126. Eliscovich C, Shenoy S, Singer R. Imaging mRNA and protein interactions within neurons. Proc Natl Acad Sci U S A. 2017;114:E1875-E1884 pubmed publisher
  127. Vazquez Cintron E, Beske P, Tenezaca L, Tran B, Oyler J, Glotfelty E, et al. Engineering Botulinum Neurotoxin C1 as a Molecular Vehicle for Intra-Neuronal Drug Delivery. Sci Rep. 2017;7:42923 pubmed publisher
  128. Zhu Y, Zhang Q, Zhang W, Li N, Dai Y, Tu J, et al. Protective Effect of 17β-Estradiol Upon Hippocampal Spine Density and Cognitive Function in an Animal Model of Vascular Dementia. Sci Rep. 2017;7:42660 pubmed publisher
  129. Sartore R, Cardoso S, Lages Y, Paraguassu J, Stelling M, Madeiro da Costa R, et al. Trace elements during primordial plexiform network formation in human cerebral organoids. Peerj. 2017;5:e2927 pubmed publisher
  130. Zoltowska K, Maesako M, Lushnikova I, Takeda S, Keller L, Skibo G, et al. Dynamic presenilin 1 and synaptotagmin 1 interaction modulates exocytosis and amyloid β production. Mol Neurodegener. 2017;12:15 pubmed publisher
  131. Furukawa S, Nagaike M, Ozaki K. Databases for technical aspects of immunohistochemistry. J Toxicol Pathol. 2017;30:79-107 pubmed publisher
  132. Kim S, Im S, Oh S, Jeong S, Yoon E, Lee C, et al. Anisotropically organized three-dimensional culture platform for reconstruction of a hippocampal neural network. Nat Commun. 2017;8:14346 pubmed publisher
  133. Mooney C, Jimenez Mateos E, Engel T, Mooney C, Diviney M, Venø M, et al. RNA sequencing of synaptic and cytoplasmic Upf1-bound transcripts supports contribution of nonsense-mediated decay to epileptogenesis. Sci Rep. 2017;7:41517 pubmed publisher
  134. Biever A, Boubaker Vitre J, Cutando L, Gracia Rubio I, Costa Mattioli M, Puighermanal E, et al. Repeated Exposure to D-Amphetamine Decreases Global Protein Synthesis and Regulates the Translation of a Subset of mRNAs in the Striatum. Front Mol Neurosci. 2016;9:165 pubmed publisher
  135. Valkova C, Liebmann L, Kramer A, Hübner C, Kaether C. The sorting receptor Rer1 controls Purkinje cell function via voltage gated sodium channels. Sci Rep. 2017;7:41248 pubmed publisher
  136. Qi Y, Zhang X, Renier N, Wu Z, Atkin T, Sun Z, et al. Combined small-molecule inhibition accelerates the derivation of functional cortical neurons from human pluripotent stem cells. Nat Biotechnol. 2017;35:154-163 pubmed publisher
  137. Behm M, Wahlstedt H, Widmark A, Eriksson M, Ohman M. Accumulation of nuclear ADAR2 regulates adenosine-to-inosine RNA editing during neuronal development. J Cell Sci. 2017;130:745-753 pubmed publisher
  138. Ilouz R, Lev Ram V, Bushong E, Stiles T, Friedmann Morvinski D, Douglas C, et al. Isoform-specific subcellular localization and function of protein kinase A identified by mosaic imaging of mouse brain. elife. 2017;6: pubmed publisher
  139. Redmann M, Wani W, Volpicelli Daley L, Darley Usmar V, Zhang J. Trehalose does not improve neuronal survival on exposure to alpha-synuclein pre-formed fibrils. Redox Biol. 2017;11:429-437 pubmed publisher
  140. Perland E, Hellsten S, Lekholm E, Eriksson M, Arapi V, Fredriksson R. The Novel Membrane-Bound Proteins MFSD1 and MFSD3 are Putative SLC Transporters Affected by Altered Nutrient Intake. J Mol Neurosci. 2017;61:199-214 pubmed publisher
  141. Ronellenfitsch M, Oh J, Satomi K, Sumi K, Harter P, Steinbach J, et al. CASP9 germline mutation in a family with multiple brain tumors. Brain Pathol. 2018;28:94-102 pubmed publisher
  142. Nagahara Y, Shimazawa M, Ohuchi K, Ito J, Takahashi H, Tsuruma K, et al. GPNMB ameliorates mutant TDP-43-induced motor neuron cell death. J Neurosci Res. 2017;95:1647-1665 pubmed publisher
  143. Wolfes A, Ahmed S, Awasthi A, Stahlberg M, Rajput A, Magruder D, et al. A novel method for culturing stellate astrocytes reveals spatially distinct Ca2+ signaling and vesicle recycling in astrocytic processes. J Gen Physiol. 2017;149:149-170 pubmed publisher
  144. Gisabella B, Farah S, Peng X, Burgos Robles A, Lim S, Goosens K. Growth hormone biases amygdala network activation after fear learning. Transl Psychiatry. 2016;6:e960 pubmed publisher
  145. FINAN G, Realubit R, Chung S, Lutjohann D, Wang N, Cirrito J, et al. Bioactive Compound Screen for Pharmacological Enhancers of Apolipoprotein E in Primary Human Astrocytes. Cell Chem Biol. 2016;23:1526-1538 pubmed publisher
  146. Kilpatrick C, Murakami S, Feng M, Wu X, Lal R, Chen G, et al. Dissociation of Golgi-associated DHHC-type Zinc Finger Protein (GODZ)- and Sertoli Cell Gene with a Zinc Finger Domain-? (SERZ-?)-mediated Palmitoylation by Loss of Function Analyses in Knock-out Mice. J Biol Chem. 2016;291:27371-27386 pubmed publisher
  147. Hill S, Mordes D, Cameron L, Neuberg D, Landini S, Eggan K, et al. Two familial ALS proteins function in prevention/repair of transcription-associated DNA damage. Proc Natl Acad Sci U S A. 2016;113:E7701-E7709 pubmed
  148. Park J, Kim S, Yoo J, Jang J, Lee A, Oh J, et al. Novel Neuroprotective Effects of Melanin-Concentrating Hormone in Parkinson's Disease. Mol Neurobiol. 2017;54:7706-7721 pubmed publisher
  149. Brykczynska U, Pecho Vrieseling E, Thiemeyer A, Klein J, Fruh I, Doll T, et al. CGG Repeat-Induced FMR1 Silencing Depends on the Expansion Size in Human iPSCs and Neurons Carrying Unmethylated Full Mutations. Stem Cell Reports. 2016;7:1059-1071 pubmed publisher
  150. Poncelet L, Garigliany M, Ando K, Franssen M, Desmecht D, Brion J. Cell cycle S phase markers are expressed in cerebral neuron nuclei of cats infected by the Feline Panleukopenia Virus. Cell Cycle. 2016;15:3482-3489 pubmed publisher
  151. Akbalik G, Langebeck Jensen K, Tushev G, Sambandan S, Rinne J, Epstein I, et al. Visualization of newly synthesized neuronal RNA in vitro and in vivo using click-chemistry. RNA Biol. 2017;14:20-28 pubmed publisher
  152. Piechota M, Sunderland P, Wysocka A, Nalberczak M, Sliwinska M, Radwanska K, et al. Is senescence-associated β-galactosidase a marker of neuronal senescence?. Oncotarget. 2016;7:81099-81109 pubmed publisher
  153. Kaneko Y, Pappas C, Tajiri N, Borlongan C. Oxytocin modulates GABAAR subunits to confer neuroprotection in stroke in vitro. Sci Rep. 2016;6:35659 pubmed publisher
  154. Rademacher N, Schmerl B, Lardong J, Wahl M, Shoichet S. MPP2 is a postsynaptic MAGUK scaffold protein that links SynCAM1 cell adhesion molecules to core components of the postsynaptic density. Sci Rep. 2016;6:35283 pubmed publisher
  155. Woodruff G, Reyna S, Dunlap M, van der Kant R, Callender J, Young J, et al. Defective Transcytosis of APP and Lipoproteins in Human iPSC-Derived Neurons with Familial Alzheimer's Disease Mutations. Cell Rep. 2016;17:759-773 pubmed publisher
  156. Kilic O, Pamies D, Lavell E, Schiapparelli P, Feng Y, Hartung T, et al. Brain-on-a-chip model enables analysis of human neuronal differentiation and chemotaxis. Lab Chip. 2016;16:4152-4162 pubmed
  157. Abolpour Mofrad S, Kuenzel K, Friedrich O, Gilbert D. Optimizing neuronal differentiation of human pluripotent NT2 stem cells in monolayer cultures. Dev Growth Differ. 2016;58:664-676 pubmed publisher
  158. Wolfe S, Workman E, Heaney C, Niere F, Namjoshi S, Cacheaux L, et al. FMRP regulates an ethanol-dependent shift in GABABR function and expression with rapid antidepressant properties. Nat Commun. 2016;7:12867 pubmed publisher
  159. Dragich J, Kuwajima T, Hirose Ikeda M, Yoon M, Eenjes E, Bosco J, et al. Autophagy linked FYVE (Alfy/WDFY3) is required for establishing neuronal connectivity in the mammalian brain. elife. 2016;5: pubmed publisher
  160. Chen P, Qin L, Li G, Tellides G, Simons M. Fibroblast growth factor (FGF) signaling regulates transforming growth factor beta (TGF?)-dependent smooth muscle cell phenotype modulation. Sci Rep. 2016;6:33407 pubmed publisher
  161. Bisbal M, Quassollo G, Caceres A. Imaging Golgi Outposts in Fixed and Living Neurons. Methods Mol Biol. 2016;1496:31-9 pubmed publisher
  162. Hansen S, Stummann T, Borland H, Hasholt L, Tumer Z, Nielsen J, et al. Induced pluripotent stem cell - derived neurons for the study of spinocerebellar ataxia type 3. Stem Cell Res. 2016;17:306-317 pubmed publisher
  163. Clairfeuille T, Mas C, Chan A, Yang Z, Tello Lafoz M, Chandra M, et al. A molecular code for endosomal recycling of phosphorylated cargos by the SNX27-retromer complex. Nat Struct Mol Biol. 2016;23:921-932 pubmed publisher
  164. Begum A, Aguilar J, Elias L, Hong Y. Silver nanoparticles exhibit coating and dose-dependent neurotoxicity in glutamatergic neurons derived from human embryonic stem cells. Neurotoxicology. 2016;57:45-53 pubmed publisher
  165. Fujita K, Motoki K, Tagawa K, Chen X, Hama H, Nakajima K, et al. HMGB1, a pathogenic molecule that induces neurite degeneration via TLR4-MARCKS, is a potential therapeutic target for Alzheimer's disease. Sci Rep. 2016;6:31895 pubmed publisher
  166. Chailangkarn T, Trujillo C, Freitas B, Hrvoj Mihic B, Herai R, Yu D, et al. A human neurodevelopmental model for Williams syndrome. Nature. 2016;536:338-43 pubmed
  167. Waaijers S, Muñoz J, Berends C, Ramalho J, Goerdayal S, Low T, et al. A tissue-specific protein purification approach in Caenorhabditis elegans identifies novel interaction partners of DLG-1/Discs large. BMC Biol. 2016;14:66 pubmed publisher
  168. Westbroek W, Nguyen M, Siebert M, Lindstrom T, Burnett R, Aflaki E, et al. A new glucocerebrosidase-deficient neuronal cell model provides a tool to probe pathophysiology and therapeutics for Gaucher disease. Dis Model Mech. 2016;9:769-78 pubmed publisher
  169. Hamada N, Ito H, Nishijo T, Iwamoto I, Morishita R, Tabata H, et al. Essential role of the nuclear isoform of RBFOX1, a candidate gene for autism spectrum disorders, in the brain development. Sci Rep. 2016;6:30805 pubmed publisher
  170. Lee S, Le Pichon C, Adolfsson O, Gafner V, Pihlgren M, Lin H, et al. Antibody-Mediated Targeting of Tau In Vivo Does Not Require Effector Function and Microglial Engagement. Cell Rep. 2016;16:1690-1700 pubmed publisher
  171. Alves S, Marais T, Biferi M, Furling D, Marinello M, El Hachimi K, et al. Lentiviral vector-mediated overexpression of mutant ataxin-7 recapitulates SCA7 pathology and promotes accumulation of the FUS/TLS and MBNL1 RNA-binding proteins. Mol Neurodegener. 2016;11:58 pubmed publisher
  172. Sun Y, Paşca S, Portmann T, Goold C, Worringer K, Guan W, et al. A deleterious Nav1.1 mutation selectively impairs telencephalic inhibitory neurons derived from Dravet Syndrome patients. elife. 2016;5: pubmed publisher
  173. Ku T, Swaney J, Park J, Albanese A, Murray E, Cho J, et al. Multiplexed and scalable super-resolution imaging of three-dimensional protein localization in size-adjustable tissues. Nat Biotechnol. 2016;34:973-81 pubmed publisher
  174. Skytt D, Toft Kehler A, Brændstrup C, Cejvanovic S, Gurubaran I, Bergersen L, et al. Glia-Neuron Interactions in the Retina Can Be Studied in Cocultures of Müller Cells and Retinal Ganglion Cells. Biomed Res Int. 2016;2016:1087647 pubmed publisher
  175. Diez H, Benitez M, Fernandez S, Torres Aleman I, Garrido J, Wandosell F. Class I PI3-kinase or Akt inhibition do not impair axonal polarization, but slow down axonal elongation. Biochim Biophys Acta. 2016;1863:2574-2583 pubmed publisher
  176. Sun Z, Zhan L, Liang L, Sui H, Zheng L, Sun X, et al. ZiBu PiYin recipe prevents diabetes-associated cognitive decline in rats: possible involvement of ameliorating mitochondrial dysfunction, insulin resistance pathway and histopathological changes. BMC Complement Altern Med. 2016;16:200 pubmed publisher
  177. Cacialli P, Gueguen M, Coumailleau P, D angelo L, Kah O, Lucini C, et al. BDNF Expression in Larval and Adult Zebrafish Brain: Distribution and Cell Identification. PLoS ONE. 2016;11:e0158057 pubmed publisher
  178. Yin Y, Gao D, Wang Y, Wang Z, Wang X, Ye J, et al. Tau accumulation induces synaptic impairment and memory deficit by calcineurin-mediated inactivation of nuclear CaMKIV/CREB signaling. Proc Natl Acad Sci U S A. 2016;113:E3773-81 pubmed publisher
  179. Peneder T, Bauer J, Pifl C. Apoptosis-inducing factor in nigral dopamine neurons: Higher levels in primates than in mice. Mov Disord. 2016;31:1729-1733 pubmed publisher
  180. Hutchinson E, Schwerin S, Radomski K, Irfanoglu M, Juliano S, Pierpaoli C. Quantitative MRI and DTI Abnormalities During the Acute Period Following CCI in the Ferret. Shock. 2016;46:167-76 pubmed publisher
  181. Treutlein B, Lee Q, Camp J, Mall M, Koh W, Shariati S, et al. Dissecting direct reprogramming from fibroblast to neuron using single-cell RNA-seq. Nature. 2016;534:391-5 pubmed publisher
  182. Perland E, Lekholm E, Eriksson M, Bagchi S, Arapi V, Fredriksson R. The Putative SLC Transporters Mfsd5 and Mfsd11 Are Abundantly Expressed in the Mouse Brain and Have a Potential Role in Energy Homeostasis. PLoS ONE. 2016;11:e0156912 pubmed publisher
  183. Lin S, Gou G, Hsia C, Ho C, Huang K, Wu Y, et al. Simulated Microgravity Disrupts Cytoskeleton Organization and Increases Apoptosis of Rat Neural Crest Stem Cells Via Upregulating CXCR4 Expression and RhoA-ROCK1-p38 MAPK-p53 Signaling. Stem Cells Dev. 2016;25:1172-93 pubmed publisher
  184. Gibon J, Unsain N, Gamache K, Thomas R, de León A, Johnstone A, et al. The X-linked inhibitor of apoptosis regulates long-term depression and learning rate. FASEB J. 2016;30:3083-90 pubmed publisher
  185. Itoh Y, Higuchi M, Oishi K, Kishi Y, Okazaki T, Sakai H, et al. PDK1-Akt pathway regulates radial neuronal migration and microtubules in the developing mouse neocortex. Proc Natl Acad Sci U S A. 2016;113:E2955-64 pubmed publisher
  186. He J, Zhou R, Wu Z, Carrasco M, Kurshan P, Farley J, et al. Prevalent presence of periodic actin-spectrin-based membrane skeleton in a broad range of neuronal cell types and animal species. Proc Natl Acad Sci U S A. 2016;113:6029-34 pubmed publisher
  187. Hochmeister S, Engel O, Adzemovic M, Pekar T, Kendlbacher P, Zeitelhofer M, et al. Lipocalin-2 as an Infection-Related Biomarker to Predict Clinical Outcome in Ischemic Stroke. PLoS ONE. 2016;11:e0154797 pubmed publisher
  188. Beck S, Guo L, Phensy A, Tian J, Wang L, Tandon N, et al. Deregulation of mitochondrial F1FO-ATP synthase via OSCP in Alzheimer's disease. Nat Commun. 2016;7:11483 pubmed publisher
  189. Frank R, Komiyama N, Ryan T, Zhu F, O Dell T, Grant S. NMDA receptors are selectively partitioned into complexes and supercomplexes during synapse maturation. Nat Commun. 2016;7:11264 pubmed publisher
  190. Ren M, Du C, Herrero Acero E, Tang Schomer M, Ozkucur N. A biofidelic 3D culture model to study the development of brain cellular systems. Sci Rep. 2016;6:24953 pubmed publisher
  191. Cabrera J, Lucas J. MAP2 Splicing is Altered in Huntington's Disease. Brain Pathol. 2017;27:181-189 pubmed publisher
  192. Tkachenko L, Zykin P, Nasyrov R, Krasnoshchekova E. Distinctive Features of the Human Marginal Zone and Cajal-Retzius Cells: Comparison of Morphological and Immunocytochemical Features at Midgestation. Front Neuroanat. 2016;10:26 pubmed publisher
  193. Garcia C, Videla Richardson G, Dimopoulos N, Fernandez Espinosa D, Miriuka S, Sevlever G, et al. Human Pluripotent Stem Cells and Derived Neuroprogenitors Display Differential Degrees of Susceptibility to BH3 Mimetics ABT-263, WEHI-539 and ABT-199. PLoS ONE. 2016;11:e0152607 pubmed publisher
  194. Kos A, Wanke K, Gioio A, Martens G, Kaplan B, Aschrafi A. Monitoring mRNA Translation in Neuronal Processes Using Fluorescent Non-Canonical Amino Acid Tagging. J Histochem Cytochem. 2016;64:323-33 pubmed publisher
  195. Fujiwara K, Fujita Y, Kasai A, Onaka Y, Hashimoto H, Okada H, et al. Deletion of JMJD2B in neurons leads to defective spine maturation, hyperactive behavior and memory deficits in mouse. Transl Psychiatry. 2016;6:e766 pubmed publisher
  196. Vicidomini C, Ponzoni L, Lim D, Schmeisser M, Reim D, Morello N, et al. Pharmacological enhancement of mGlu5 receptors rescues behavioral deficits in SHANK3 knock-out mice. Mol Psychiatry. 2017;22:689-702 pubmed publisher
  197. Connell J, Allison R, Reid E. Quantitative Gait Analysis Using a Motorized Treadmill System Sensitively Detects Motor Abnormalities in Mice Expressing ATPase Defective Spastin. PLoS ONE. 2016;11:e0152413 pubmed publisher
  198. Wang X, Zhang X, Zhou T, Li N, Jang C, Xiao Z, et al. Elevated Neuronal Excitability Due to Modulation of the Voltage-Gated Sodium Channel Nav1.6 by Aβ1-42. Front Neurosci. 2016;10:94 pubmed publisher
  199. Patzke C, Acuna C, Giam L, Wernig M, Südhof T. Conditional deletion of L1CAM in human neurons impairs both axonal and dendritic arborization and action potential generation. J Exp Med. 2016;213:499-515 pubmed publisher
  200. Zhang Y, Gendron T, Grima J, Sasaguri H, Jansen West K, Xu Y, et al. C9ORF72 poly(GA) aggregates sequester and impair HR23 and nucleocytoplasmic transport proteins. Nat Neurosci. 2016;19:668-677 pubmed publisher
  201. Cui Y, Han J, Xiao Z, Chen T, Wang B, Chen B, et al. The miR-20-Rest-Wnt signaling axis regulates neural progenitor cell differentiation. Sci Rep. 2016;6:23300 pubmed publisher
  202. Ito M, Nakamura K, Mori F, Miki Y, Tanji K, Wakabayashi K. Novel eosinophilic neuronal cytoplasmic inclusions in the external cuneate nucleus of humans. Neuropathology. 2016;36:441-447 pubmed publisher
  203. Leon J, Sakumi K, Castillo E, Sheng Z, Oka S, Nakabeppu Y. 8-Oxoguanine accumulation in mitochondrial DNA causes mitochondrial dysfunction and impairs neuritogenesis in cultured adult mouse cortical neurons under oxidative conditions. Sci Rep. 2016;6:22086 pubmed publisher
  204. Alshammari M, Alshammari T, Laezza F. Improved Methods for Fluorescence Microscopy Detection of Macromolecules at the Axon Initial Segment. Front Cell Neurosci. 2016;10:5 pubmed publisher
  205. Wilson N, Titus D, Oliva A, Furones C, Atkins C. Traumatic Brain Injury Upregulates Phosphodiesterase Expression in the Hippocampus. Front Syst Neurosci. 2016;10:5 pubmed publisher
  206. Urnukhsaikhan E, Cho H, Mishig Ochir T, Seo Y, Park J. Pulsed electromagnetic fields promote survival and neuronal differentiation of human BM-MSCs. Life Sci. 2016;151:130-138 pubmed publisher
  207. Collazos Castro J, García Rama C, Alves Sampaio A. Glial progenitor cell migration promotes CNS axon growth on functionalized electroconducting microfibers. Acta Biomater. 2016;35:42-56 pubmed publisher
  208. Zhang W, Kim P, Chen Z, Lokman H, Qiu L, Zhang K, et al. MiRNA-128 regulates the proliferation and neurogenesis of neural precursors by targeting PCM1 in the developing cortex. elife. 2016;5: pubmed publisher
  209. Hatori Y, Yan Y, Schmidt K, Furukawa E, Hasan N, Yang N, et al. Neuronal differentiation is associated with a redox-regulated increase of copper flow to the secretory pathway. Nat Commun. 2016;7:10640 pubmed publisher
  210. Xu J, Wang N, Luo J, Xia J. Syntabulin regulates the trafficking of PICK1-containing vesicles in neurons. Sci Rep. 2016;6:20924 pubmed publisher
  211. Liu B, Ma A, Zhang F, Wang Y, Li Z, Li Q, et al. MAZ mediates the cross-talk between CT-1 and NOTCH1 signaling during gliogenesis. Sci Rep. 2016;6:21534 pubmed publisher
  212. Nawaz M, Giarda E, Bedogni F, La Montanara P, Ricciardi S, Ciceri D, et al. CDKL5 and Shootin1 Interact and Concur in Regulating Neuronal Polarization. PLoS ONE. 2016;11:e0148634 pubmed publisher
  213. Schoen M, Reichel J, Demestre M, Putz S, Deshpande D, Proepper C, et al. Super-Resolution Microscopy Reveals Presynaptic Localization of the ALS/FTD Related Protein FUS in Hippocampal Neurons. Front Cell Neurosci. 2015;9:496 pubmed publisher
  214. Canetta S, Bolkan S, Padilla Coreano N, Song L, Sahn R, Harrison N, et al. Maternal immune activation leads to selective functional deficits in offspring parvalbumin interneurons. Mol Psychiatry. 2016;21:956-68 pubmed publisher
  215. Kishi N, MacDonald J, Ye J, Molyneaux B, Azim E, Macklis J. Reduction of aberrant NF-κB signalling ameliorates Rett syndrome phenotypes in Mecp2-null mice. Nat Commun. 2016;7:10520 pubmed publisher
  216. Brahic M, Bousset L, Bieri G, Melki R, Gitler A. Axonal transport and secretion of fibrillar forms of α-synuclein, Aβ42 peptide and HTTExon 1. Acta Neuropathol. 2016;131:539-48 pubmed publisher
  217. Wang Y, Wu Q, Yang P, Wang C, Liu J, Ding W, et al. LSD1 co-repressor Rcor2 orchestrates neurogenesis in the developing mouse brain. Nat Commun. 2016;7:10481 pubmed publisher
  218. Müller A, Stellmacher A, Freitag C, Landgraf P, Dieterich D. Monitoring Astrocytic Proteome Dynamics by Cell Type-Specific Protein Labeling. PLoS ONE. 2015;10:e0145451 pubmed publisher
  219. Haas L, Salazar S, Kostylev M, Um J, Kaufman A, Strittmatter S. Metabotropic glutamate receptor 5 couples cellular prion protein to intracellular signalling in Alzheimer's disease. Brain. 2016;139:526-46 pubmed publisher
  220. Scandaglia M, Benito E, Morenilla Palao C, Fiorenza A, Del Blanco B, Coca Y, et al. Fine-tuned SRF activity controls asymmetrical neuronal outgrowth: implications for cortical migration, neural tissue lamination and circuit assembly. Sci Rep. 2015;5:17470 pubmed publisher
  221. Stephen T, Higgs N, Sheehan D, Al Awabdh S, López Doménech G, Arancibia Carcamo I, et al. Miro1 Regulates Activity-Driven Positioning of Mitochondria within Astrocytic Processes Apposed to Synapses to Regulate Intracellular Calcium Signaling. J Neurosci. 2015;35:15996-6011 pubmed publisher
  222. Ho S, Hartley B, TCW J, Beaumont M, Stafford K, Slesinger P, et al. Rapid Ngn2-induction of excitatory neurons from hiPSC-derived neural progenitor cells. Methods. 2016;101:113-24 pubmed publisher
  223. Leshchyns ka I, Liew H, Shepherd C, Halliday G, Stevens C, Ke Y, et al. Aβ-dependent reduction of NCAM2-mediated synaptic adhesion contributes to synapse loss in Alzheimer's disease. Nat Commun. 2015;6:8836 pubmed publisher
  224. Oliveira L, Falomir Lockhart L, Botelho M, Lin K, Wales P, Koch J, et al. Elevated α-synuclein caused by SNCA gene triplication impairs neuronal differentiation and maturation in Parkinson's patient-derived induced pluripotent stem cells. Cell Death Dis. 2015;6:e1994 pubmed publisher
  225. Hajj R, Milet A, Toulorge D, Cholet N, Laffaire J, Foucquier J, et al. Combination of acamprosate and baclofen as a promising therapeutic approach for Parkinson's disease. Sci Rep. 2015;5:16084 pubmed publisher
  226. Das D, Tapias V, D Aiuto L, Chowdari K, Francis L, Zhi Y, et al. Genetic and morphological features of human iPSC-derived neurons with chromosome 15q11.2 (BP1-BP2) deletions. Mol Neuropsychiatry. 2015;1:116-123 pubmed
  227. Taylor A, Vagaska B, Edgington R, Hébert C, Ferretti P, Bergonzo P, et al. Biocompatibility of nanostructured boron doped diamond for the attachment and proliferation of human neural stem cells. J Neural Eng. 2015;12:066016 pubmed publisher
  228. Corcoran K, Leaderbrand K, Jovasevic V, Guedea A, Kassam F, Radulovic J. Regulation of fear extinction versus other affective behaviors by discrete cortical scaffolding complexes associated with NR2B and PKA signaling. Transl Psychiatry. 2015;5:e657 pubmed publisher
  229. Chen F, Rosiene J, Che A, Becker A, LoTurco J. Tracking and transforming neocortical progenitors by CRISPR/Cas9 gene targeting and piggyBac transposase lineage labeling. Development. 2015;142:3601-11 pubmed publisher
  230. Uchida H, Morita T, Niizuma K, Kushida Y, Kuroda Y, Wakao S, et al. Transplantation of Unique Subpopulation of Fibroblasts, Muse Cells, Ameliorates Experimental Stroke Possibly via Robust Neuronal Differentiation. Stem Cells. 2016;34:160-73 pubmed publisher
  231. Bullmann T, Seeger G, Stieler J, Hanics J, Reimann K, Kretzschmann T, et al. Tau phosphorylation-associated spine regression does not impair hippocampal-dependent memory in hibernating golden hamsters. Hippocampus. 2016;26:301-18 pubmed publisher
  232. Kraushar M, Viljetić B, Wijeratne H, Thompson K, Jiao X, Pike J, et al. Thalamic WNT3 Secretion Spatiotemporally Regulates the Neocortical Ribosome Signature and mRNA Translation to Specify Neocortical Cell Subtypes. J Neurosci. 2015;35:10911-26 pubmed publisher
  233. Ohnishi T, Yanazawa M, Sasahara T, Kitamura Y, Hiroaki H, Fukazawa Y, et al. Na, K-ATPase α3 is a death target of Alzheimer patient amyloid-β assembly. Proc Natl Acad Sci U S A. 2015;112:E4465-74 pubmed publisher
  234. Mohammadi A, Attari F, Babapour V, Hassani S, Masoudi N, Shahverdi A, et al. Generation of Rat Embryonic Germ Cells via Inhibition of TGFß and MEK Pathways. Cell J. 2015;17:288-95 pubmed
  235. Smith L, He Y, Park J, Bieri G, Snethlage C, Lin K, et al. β2-microglobulin is a systemic pro-aging factor that impairs cognitive function and neurogenesis. Nat Med. 2015;21:932-7 pubmed publisher
  236. Licht Mayer S, Wimmer I, Traffehn S, Metz I, Brück W, Bauer J, et al. Cell type-specific Nrf2 expression in multiple sclerosis lesions. Acta Neuropathol. 2015;130:263-77 pubmed publisher
  237. Tang H, Hua F, Wang J, Yousuf S, Atif F, Sayeed I, et al. Progesterone and vitamin D combination therapy modulates inflammatory response after traumatic brain injury. Brain Inj. 2015;29:1165-1174 pubmed publisher
  238. Bijata M, Wlodarczyk J, Figiel I. Dystroglycan controls dendritic morphogenesis of hippocampal neurons in vitro. Front Cell Neurosci. 2015;9:199 pubmed publisher
  239. Dell Ovo V, Rosenzweig J, Burd I, Merabova N, Darbinian N, Goetzl L. An animal model for chorioamnionitis at term. Am J Obstet Gynecol. 2015;213:387.e1-10 pubmed publisher
  240. Poletti V, Delli Carri A, Malagoli Tagliazucchi G, Faedo A, Petiti L, Mazza E, et al. Genome-Wide Definition of Promoter and Enhancer Usage during Neural Induction of Human Embryonic Stem Cells. PLoS ONE. 2015;10:e0126590 pubmed publisher
  241. Zhou F, Gao S, Wang L, Sun C, Chen L, Yuan P, et al. Human adipose-derived stem cells partially rescue the stroke syndromes by promoting spatial learning and memory in mouse middle cerebral artery occlusion model. Stem Cell Res Ther. 2015;6:92 pubmed publisher
  242. Meganathan K, Jagtap S, Srinivasan S, Wagh V, Hescheler J, Hengstler J, et al. Neuronal developmental gene and miRNA signatures induced by histone deacetylase inhibitors in human embryonic stem cells. Cell Death Dis. 2015;6:e1756 pubmed publisher
  243. Farzana F, Zalm R, Chen N, Li K, Grant S, Smit A, et al. Neurobeachin Regulates Glutamate- and GABA-Receptor Targeting to Synapses via Distinct Pathways. Mol Neurobiol. 2016;53:2112-23 pubmed publisher
  244. Usui Y, Westenskow P, Kurihara T, Aguilar E, Sakimoto S, Paris L, et al. Neurovascular crosstalk between interneurons and capillaries is required for vision. J Clin Invest. 2015;125:2335-46 pubmed publisher
  245. Machado C, Griesi Oliveira K, Rosenberg C, Kok F, Martins S, Passos Bueno M, et al. Collybistin binds and inhibits mTORC1 signaling: a potential novel mechanism contributing to intellectual disability and autism. Eur J Hum Genet. 2016;24:59-65 pubmed publisher
  246. Deleyrolle L, Sabourin J, Rothhut B, Fujita H, Guichet P, Teigell M, et al. OCAM regulates embryonic spinal cord stem cell proliferation by modulating ErbB2 receptor. PLoS ONE. 2015;10:e0122337 pubmed publisher
  247. Brøchner C, Holst C, Møllgård K. Outer brain barriers in rat and human development. Front Neurosci. 2015;9:75 pubmed publisher
  248. Balsara R, Dang A, Donahue D, Snow T, Castellino F. Conantokin-G attenuates detrimental effects of NMDAR hyperactivity in an ischemic rat model of stroke. PLoS ONE. 2015;10:e0122840 pubmed publisher
  249. Videla Richardson G, Garcia C, Roisman A, Slavutsky I, Fernandez Espinosa D, Romorini L, et al. Specific Preferences in Lineage Choice and Phenotypic Plasticity of Glioma Stem Cells Under BMP4 and Noggin Influence. Brain Pathol. 2016;26:43-61 pubmed publisher
  250. Liu Y, Lee J, Ackerman S. Mutations in the microtubule-associated protein 1A (Map1a) gene cause Purkinje cell degeneration. J Neurosci. 2015;35:4587-98 pubmed publisher
  251. Nakadate K. Developmental changes in the flotillin-1 expression pattern of the rat visual cortex. Neuroscience. 2015;292:101-11 pubmed publisher
  252. Arulmoli J, Pathak M, McDonnell L, Nourse J, Tombola F, Earthman J, et al. Static stretch affects neural stem cell differentiation in an extracellular matrix-dependent manner. Sci Rep. 2015;5:8499 pubmed publisher
  253. Xu X, Yang X, Xiong Y, Gu J, He C, Hu Y, et al. Increased expression of receptor for activated C kinase 1 in temporal lobe epilepsy. J Neurochem. 2015;133:134-43 pubmed publisher
  254. Xue T, Wei L, Zha D, Qiao L, Lu L, Chen F, et al. Exposure to acoustic stimuli promotes the development and differentiation of neural stem cells from the cochlear nuclei through the clusterin pathway. Int J Mol Med. 2015;35:637-44 pubmed publisher
  255. Cerbini T, Funahashi R, Luo Y, Liu C, Park K, Rao M, et al. Transcription activator-like effector nuclease (TALEN)-mediated CLYBL targeting enables enhanced transgene expression and one-step generation of dual reporter human induced pluripotent stem cell (iPSC) and neural stem cell (NSC) lines. PLoS ONE. 2015;10:e0116032 pubmed publisher
  256. Maurya S, Mishra J, Abbas S, Bandyopadhyay S. Cypermethrin Stimulates GSK3β-Dependent Aβ and p-tau Proteins and Cognitive Loss in Young Rats: Reduced HB-EGF Signaling and Downstream Neuroinflammation as Critical Regulators. Mol Neurobiol. 2016;53:968-82 pubmed publisher
  257. Kumar M, Csaba Z, Peineau S, Srivastava R, Rasika S, Mani S, et al. Endogenous cerebellar neurogenesis in adult mice with progressive ataxia. Ann Clin Transl Neurol. 2014;1:968-81 pubmed publisher
  258. Wen M, Yan Y, Yan N, Chen X, Liu S, Feng Z. Upregulation of RBFOX1 in the malformed cortex of patients with intractable epilepsy and in cultured rat neurons. Int J Mol Med. 2015;35:597-606 pubmed publisher
  259. Walkup W, Washburn L, Sweredoski M, Carlisle H, Graham R, Hess S, et al. Phosphorylation of synaptic GTPase-activating protein (synGAP) by Ca2+/calmodulin-dependent protein kinase II (CaMKII) and cyclin-dependent kinase 5 (CDK5) alters the ratio of its GAP activity toward Ras and Rap GTPases. J Biol Chem. 2015;290:4908-27 pubmed publisher
  260. Riecken L, Tawamie H, Dornblut C, Buchert R, Ismayel A, Schulz A, et al. Inhibition of RAS activation due to a homozygous ezrin variant in patients with profound intellectual disability. Hum Mutat. 2015;36:270-8 pubmed publisher
  261. Vergaño Vera E, Diaz Guerra E, Rodríguez Traver E, Méndez Gómez H, Solis O, Pignatelli J, et al. Nurr1 blocks the mitogenic effect of FGF-2 and EGF, inducing olfactory bulb neural stem cells to adopt dopaminergic and dopaminergic-GABAergic neuronal phenotypes. Dev Neurobiol. 2015;75:823-41 pubmed publisher
  262. Chip S, Zhu X, Kapfhammer J. The analysis of neurovascular remodeling in entorhino-hippocampal organotypic slice cultures. J Vis Exp. 2014;:e52023 pubmed publisher
  263. Goyal U, Renvoisé B, Chang J, Blackstone C. Spastin-interacting protein NA14/SSNA1 functions in cytokinesis and axon development. PLoS ONE. 2014;9:e112428 pubmed publisher
  264. Deng X, Li M, Ai W, He L, Lu D, Patrylo P, et al. Lipolysaccharide-Induced Neuroinflammation Is Associated with Alzheimer-Like Amyloidogenic Axonal Pathology and Dendritic Degeneration in Rats. Adv Alzheimer Dis. 2014;3:78-93 pubmed
  265. Steward O, Sharp K, Yee K, Hatch M, Bonner J. Characterization of ectopic colonies that form in widespread areas of the nervous system with neural stem cell transplants into the site of a severe spinal cord injury. J Neurosci. 2014;34:14013-21 pubmed publisher
  266. Jia J, Hu Z, Nordman J, Li Z. The schizophrenia susceptibility gene dysbindin regulates dendritic spine dynamics. J Neurosci. 2014;34:13725-36 pubmed publisher
  267. Libard S, Popova S, Amini R, Kärjä V, Pietiläinen T, Hämäläinen K, et al. Human cytomegalovirus tegument protein pp65 is detected in all intra- and extra-axial brain tumours independent of the tumour type or grade. PLoS ONE. 2014;9:e108861 pubmed publisher
  268. Deleglise B, Magnifico S, Duplus E, Vaur P, Soubeyre V, Belle M, et al. β-amyloid induces a dying-back process and remote trans-synaptic alterations in a microfluidic-based reconstructed neuronal network. Acta Neuropathol Commun. 2014;2:145 pubmed publisher
  269. Bell A, Althaus M, Diener M. Communication between mast cells and rat submucosal neurons. Pflugers Arch. 2015;467:1809-23 pubmed publisher
  270. Gervois P, Struys T, Hilkens P, Bronckaers A, Ratajczak J, Politis C, et al. Neurogenic maturation of human dental pulp stem cells following neurosphere generation induces morphological and electrophysiological characteristics of functional neurons. Stem Cells Dev. 2015;24:296-311 pubmed publisher
  271. Chou C, Sinden J, Couraud P, Modo M. In vitro modeling of the neurovascular environment by coculturing adult human brain endothelial cells with human neural stem cells. PLoS ONE. 2014;9:e106346 pubmed publisher
  272. Watanabe Y, Sakuma C, Yaginuma H. NRP1-mediated Sema3A signals coordinate laminar formation in the developing chick optic tectum. Development. 2014;141:3572-82 pubmed publisher
  273. Zhang Y, Jansen West K, Xu Y, Gendron T, Bieniek K, Lin W, et al. Aggregation-prone c9FTD/ALS poly(GA) RAN-translated proteins cause neurotoxicity by inducing ER stress. Acta Neuropathol. 2014;128:505-24 pubmed publisher
  274. Radonjić N, Memi F, Ortega J, Glidden N, Zhan H, Zecevic N. The Role of Sonic Hedgehog in the Specification of Human Cortical Progenitors In Vitro. Cereb Cortex. 2016;26:131-43 pubmed publisher
  275. Yarchoan M, Toledo J, Lee E, Arvanitakis Z, Kazi H, Han L, et al. Abnormal serine phosphorylation of insulin receptor substrate 1 is associated with tau pathology in Alzheimer's disease and tauopathies. Acta Neuropathol. 2014;128:679-89 pubmed publisher
  276. Papa L, Robertson C, Wang K, Brophy G, Hannay H, Heaton S, et al. Biomarkers improve clinical outcome predictors of mortality following non-penetrating severe traumatic brain injury. Neurocrit Care. 2015;22:52-64 pubmed publisher
  277. Tyzack G, Sitnikov S, Barson D, Adams Carr K, Lau N, Kwok J, et al. Astrocyte response to motor neuron injury promotes structural synaptic plasticity via STAT3-regulated TSP-1 expression. Nat Commun. 2014;5:4294 pubmed publisher
  278. Hagel C, Krasemann S, Löffler J, Puschel K, Magnus T, Glatzel M. Upregulation of Shiga toxin receptor CD77/Gb3 and interleukin-1? expression in the brain of EHEC patients with hemolytic uremic syndrome and neurologic symptoms. Brain Pathol. 2015;25:146-56 pubmed publisher
  279. Karow M, Schichor C, Beckervordersandforth R, Berninger B. Lineage-reprogramming of pericyte-derived cells of the adult human brain into induced neurons. J Vis Exp. 2014;: pubmed publisher
  280. Wang R, Palavicini J, Wang H, Maiti P, Bianchi E, Xu S, et al. RanBP9 overexpression accelerates loss of dendritic spines in a mouse model of Alzheimer's disease. Neurobiol Dis. 2014;69:169-79 pubmed publisher
  281. Mori F, Watanabe Y, Miki Y, Tanji K, Odagiri S, Eto K, et al. Ubiquitin-negative, eosinophilic neuronal cytoplasmic inclusions associated with stress granules and autophagy: an immunohistochemical investigation of two cases. Neuropathology. 2014;34:140-7 pubmed
  282. König N, Trolle C, Kapuralin K, Adameyko I, Mitrecic D, Aldskogius H, et al. Murine neural crest stem cells and embryonic stem cell-derived neuron precursors survive and differentiate after transplantation in a model of dorsal root avulsion. J Tissue Eng Regen Med. 2017;11:129-137 pubmed publisher
  283. Zhang W, R hse H, Rizzoli S, Opazo F. Fluorescent in situ hybridization of synaptic proteins imaged with super-resolution STED microscopy. Microsc Res Tech. 2014;77:517-27 pubmed publisher
  284. Ishikawa M, Shiota J, Ishibashi Y, Hakamata T, Shoji S, Fukuchi M, et al. Cellular localization and dendritic function of rat isoforms of the SRF coactivator MKL1 in cortical neurons. Neuroreport. 2014;25:585-92 pubmed publisher
  285. Macdonald C, Unsworth C, Graham E. Enrichment of differentiated hNT neurons and subsequent analysis using flow-cytometry and xCELLigence sensing. J Neurosci Methods. 2014;227:47-56 pubmed publisher
  286. Chen F, Becker A, LoTurco J. Contribution of tumor heterogeneity in a new animal model of CNS tumors. Mol Cancer Res. 2014;12:742-53 pubmed publisher
  287. Willard S, Hemby S, Register T, McIntosh S, Shively C. Altered expression of glial and synaptic markers in the anterior hippocampus of behaviorally depressed female monkeys. Neurosci Lett. 2014;563:1-5 pubmed publisher
  288. Yamanaka T, Tosaki A, Kurosawa M, Akimoto K, Hirose T, Ohno S, et al. Loss of aPKC? in differentiated neurons disrupts the polarity complex but does not induce obvious neuronal loss or disorientation in mouse brains. PLoS ONE. 2013;8:e84036 pubmed publisher
  289. Yousuf S, Sayeed I, Atif F, Tang H, Wang J, Stein D. Delayed progesterone treatment reduces brain infarction and improves functional outcomes after ischemic stroke: a time-window study in middle-aged rats. J Cereb Blood Flow Metab. 2014;34:297-306 pubmed publisher
  290. Hu Y, Ru N, Xiao H, Chaturbedi A, Hoa N, Tian X, et al. Tumor-specific chromosome mis-segregation controls cancer plasticity by maintaining tumor heterogeneity. PLoS ONE. 2013;8:e80898 pubmed publisher
  291. Nguyen H, Ostendorf A, Satz J, Westra S, Ross Barta S, Campbell K, et al. Glial scaffold required for cerebellar granule cell migration is dependent on dystroglycan function as a receptor for basement membrane proteins. Acta Neuropathol Commun. 2013;1:58 pubmed publisher
  292. Bhaskar K, Maphis N, Xu G, Varvel N, Kokiko Cochran O, Weick J, et al. Microglial derived tumor necrosis factor-? drives Alzheimer's disease-related neuronal cell cycle events. Neurobiol Dis. 2014;62:273-85 pubmed publisher
  293. Feng N, Han Q, Li J, Wang S, Li H, Yao X, et al. Generation of highly purified neural stem cells from human adipose-derived mesenchymal stem cells by Sox1 activation. Stem Cells Dev. 2014;23:515-29 pubmed publisher
  294. Rousseau E, Michel P, Hirsch E. The iron-binding protein lactoferrin protects vulnerable dopamine neurons from degeneration by preserving mitochondrial calcium homeostasis. Mol Pharmacol. 2013;84:888-98 pubmed publisher
  295. Valor L, Guiretti D, Lopez Atalaya J, Barco A. Genomic landscape of transcriptional and epigenetic dysregulation in early onset polyglutamine disease. J Neurosci. 2013;33:10471-82 pubmed publisher
  296. Li Q, Zhang Z, Li Z, Zhou M, Liu B, Pan L, et al. ADAM17 is critical for multipolar exit and radial migration of neuronal intermediate progenitor cells in mice cerebral cortex. PLoS ONE. 2013;8:e65703 pubmed publisher
  297. Delli Carri A, Onorati M, Castiglioni V, Faedo A, Camnasio S, Toselli M, et al. Human pluripotent stem cell differentiation into authentic striatal projection neurons. Stem Cell Rev. 2013;9:461-74 pubmed publisher
  298. Valdés Sánchez T, Rodríguez Jiménez F, García Cruz D, Escobar Ivirico J, Alastrue Agudo A, Erceg S, et al. Methacrylate-endcapped caprolactone and FM19G11 provide a proper niche for spinal cord-derived neural cells. J Tissue Eng Regen Med. 2015;9:734-9 pubmed publisher
  299. Smith A, Gibbons H, Oldfield R, Bergin P, Mee E, Faull R, et al. The transcription factor PU.1 is critical for viability and function of human brain microglia. Glia. 2013;61:929-42 pubmed publisher
  300. Semerdjieva S, Abdul Razak H, Salim S, Yáñez Muñoz R, Chen P, Tarabykin V, et al. Activation of EphA receptors mediates the recruitment of the adaptor protein Slap, contributing to the downregulation of N-methyl-D-aspartate receptors. Mol Cell Biol. 2013;33:1442-55 pubmed publisher
  301. Karasinska J, de Haan W, Franciosi S, Ruddle P, Fan J, Kruit J, et al. ABCA1 influences neuroinflammation and neuronal death. Neurobiol Dis. 2013;54:445-55 pubmed publisher
  302. Lu B, Palacino J. A novel human embryonic stem cell-derived Huntington's disease neuronal model exhibits mutant huntingtin (mHTT) aggregates and soluble mHTT-dependent neurodegeneration. FASEB J. 2013;27:1820-9 pubmed publisher
  303. Lee D, CHUNG J, Chung K, Kang M. Reactive oxygen species (ROS) modulate AMPA receptor phosphorylation and cell-surface localization in concert with pain-related behavior. Pain. 2012;153:1905-15 pubmed publisher
  304. Chao H, Lai Y, Lu Y, Lin C, Mai W, Huang Y. NMDAR signaling facilitates the IPO5-mediated nuclear import of CPEB3. Nucleic Acids Res. 2012;40:8484-98 pubmed
  305. Noam Y, Phan L, McClelland S, Manders E, Ehrengruber M, Wadman W, et al. Distinct regional and subcellular localization of the actin-binding protein filamin A in the mature rat brain. J Comp Neurol. 2012;520:3013-34 pubmed publisher
  306. Walker M, LaFerla F, Oddo S, Brewer G. Reversible epigenetic histone modifications and Bdnf expression in neurons with aging and from a mouse model of Alzheimer's disease. Age (Dordr). 2013;35:519-31 pubmed publisher
  307. Krajewska M, You Z, Rong J, Kress C, Huang X, Yang J, et al. Neuronal deletion of caspase 8 protects against brain injury in mouse models of controlled cortical impact and kainic acid-induced excitotoxicity. PLoS ONE. 2011;6:e24341 pubmed publisher
  308. Mouton Liger F, Thomas S, Rattenbach R, Magnol L, Larigaldie V, Ledru A, et al. PCP4 (PEP19) overexpression induces premature neuronal differentiation associated with Ca(2+) /calmodulin-dependent kinase II-? activation in mouse models of Down syndrome. J Comp Neurol. 2011;519:2779-802 pubmed publisher
  309. Coyle D, Li J, Baccei M. Regional differentiation of retinoic acid-induced human pluripotent embryonic carcinoma stem cell neurons. PLoS ONE. 2011;6:e16174 pubmed publisher
  310. Griffin G, Ferri Kolwicz S, Reyes B, Van Bockstaele E, Flanagan Cato L. Ovarian hormone-induced reorganization of oxytocin-labeled dendrites and synapses lateral to the hypothalamic ventromedial nucleus in female rats. J Comp Neurol. 2010;518:4531-45 pubmed publisher
  311. Han C, Min B, Kim Y, Jeong E, Park C, Woo Y, et al. Immunohistochemical analysis of developmental neural antigen expression in the balloon cells of focal cortical dysplasia. J Clin Neurosci. 2011;18:114-8 pubmed publisher
  312. Kotani T, Murata Y, Ohnishi H, Mori M, Kusakari S, Saito Y, et al. Expression of PTPRO in the interneurons of adult mouse olfactory bulb. J Comp Neurol. 2010;518:119-36 pubmed publisher
  313. Nakamura F, Ugajin K, Yamashita N, Okada T, Uchida Y, Taniguchi M, et al. Increased proximal bifurcation of CA1 pyramidal apical dendrites in sema3A mutant mice. J Comp Neurol. 2009;516:360-75 pubmed publisher
  314. Stillman A, Krsnik Z, Sun J, Rasin M, State M, Sestan N, et al. Developmentally regulated and evolutionarily conserved expression of SLITRK1 in brain circuits implicated in Tourette syndrome. J Comp Neurol. 2009;513:21-37 pubmed publisher
  315. Sakakibara S, Nakadate K, Tanaka Nakadate S, Yoshida K, Nogami S, Shirataki H, et al. Developmental and spatial expression pattern of alpha-taxilin in the rat central nervous system. J Comp Neurol. 2008;511:65-80 pubmed publisher
  316. Fevre Montange M, Grand S, Champier J, Hoffmann D, Pasquier B, Jouvet A. Bcl-2 expression in a papillary tumor of the pineal region. Neuropathology. 2008;28:660-3 pubmed publisher
  317. Caminos E, Garcia Pino E, Martinez Galan J, Juiz J. The potassium channel KCNQ5/Kv7.5 is localized in synaptic endings of auditory brainstem nuclei of the rat. J Comp Neurol. 2007;505:363-78 pubmed
  318. Ahlemeyer B, Neubert I, Kovacs W, Baumgart Vogt E. Differential expression of peroxisomal matrix and membrane proteins during postnatal development of mouse brain. J Comp Neurol. 2007;505:1-17 pubmed
  319. Dudanova I, Tabuchi K, Rohlmann A, Sudhof T, Missler M. Deletion of alpha-neurexins does not cause a major impairment of axonal pathfinding or synapse formation. J Comp Neurol. 2007;502:261-74 pubmed
  320. Navarro Quiroga I, Hernandez Valdes M, Lin S, Naegele J. Postnatal cellular contributions of the hippocampus subventricular zone to the dentate gyrus, corpus callosum, fimbria, and cerebral cortex. J Comp Neurol. 2006;497:833-45 pubmed
  321. Treloar H, Uboha U, Jeromin A, Greer C. Expression of the neuronal calcium sensor protein NCS-1 in the developing mouse olfactory pathway. J Comp Neurol. 2005;482:201-16 pubmed
  322. Trimmer P, Borland M, Keeney P, Bennett J, Parker W. Parkinson's disease transgenic mitochondrial cybrids generate Lewy inclusion bodies. J Neurochem. 2004;88:800-12 pubmed
  323. Buddle M, Eberhardt E, Ciminello L, Levin T, Wing R, DiPasquale K, et al. Microtubule-associated protein 2 (MAP2) associates with the NMDA receptor and is spatially redistributed within rat hippocampal neurons after oxygen-glucose deprivation. Brain Res. 2003;978:38-50 pubmed