Reference |
---|
Poudyal M, Patel K, Gadhe L, Sawner A, Kadu P, Datta D, et al. Intermolecular interactions underlie protein/peptide phase separation irrespective of sequence and structure at crowded milieu. Nat Commun. 2023;14:6199 pubmed publisher
|
Betters R, Luhmann E, Gottschalk A, Xu Z, Shin M, Ptak C, et al. Characterization of the Tau Interactome in Human Brain Reveals Isoform-Dependent Interaction with 14-3-3 Family Proteins. Eneuro. 2023;10: pubmed publisher
|
Gracia P, Polanco D, Taranc xf3 n D xed ez J, Serra I, Bracci M, Oroz J, et al. Molecular mechanism for the synchronized electrostatic coacervation and co-aggregation of alpha-synuclein and tau. Nat Commun. 2022;13:4586 pubmed publisher
|
Mroczek K, Fernando S, Fisher P, Annesley S. Interactions and Cytotoxicity of Human Neurodegeneration- Associated Proteins Tau and α-Synuclein in the Simple Model Dictyostelium discoideum. Front Cell Dev Biol. 2021;9:741662 pubmed publisher
|
Yuste Checa P, Trinkaus V, Riera Tur I, Imamoglu R, Schaller T, Wang H, et al. The extracellular chaperone Clusterin enhances Tau aggregate seeding in a cellular model. Nat Commun. 2021;12:4863 pubmed publisher
|
Medina L, Gonzalez Lizarraga F, Dominguez Meijide A, Ploper D, Parrales V, Sequeira S, et al. Doxycycline Interferes With Tau Aggregation and Reduces Its Neuronal Toxicity. Front Aging Neurosci. 2021;13:635760 pubmed publisher
|
Monroy B, Tan T, Oclaman J, Han J, Simo S, Niwa S, et al. A Combinatorial MAP Code Dictates Polarized Microtubule Transport. Dev Cell. 2020;53:60-72.e4 pubmed publisher
|
Tan R, Lam A, Tan T, Han J, Nowakowski D, Vershinin M, et al. Microtubules gate tau condensation to spatially regulate microtubule functions. Nat Cell Biol. 2019;21:1078-1085 pubmed publisher
|
Ferreon J, Jain A, Choi K, Tsoi P, MacKenzie K, Jung S, et al. Acetylation Disfavors Tau Phase Separation. Int J Mol Sci. 2018;19: pubmed publisher
|
Monroy B, Sawyer D, Ackermann B, Borden M, Tan T, Ori McKenney K. Competition between microtubule-associated proteins directs motor transport. Nat Commun. 2018;9:1487 pubmed publisher
|
Biswas S, Kalil K. The Microtubule-Associated Protein Tau Mediates the Organization of Microtubules and Their Dynamic Exploration of Actin-Rich Lamellipodia and Filopodia of Cortical Growth Cones. J Neurosci. 2018;38:291-307 pubmed publisher
|
Nicholls S, DeVos S, Commins C, Nobuhara C, Bennett R, Corjuc D, et al. Characterization of TauC3 antibody and demonstration of its potential to block tau propagation. PLoS ONE. 2017;12:e0177914 pubmed publisher
|
Petry F, Nicholls S, Hébert S, Planel E. A Simple Method to Avoid Nonspecific Signal When Using Monoclonal Anti-Tau Antibodies in Western Blotting of Mouse Brain Proteins. Methods Mol Biol. 2017;1523:263-272 pubmed
|
Méphon Gaspard A, Boca M, Pioche Durieu C, Desforges B, Burgo A, Hamon L, et al. Role of tau in the spatial organization of axonal microtubules: keeping parallel microtubules evenly distributed despite macromolecular crowding. Cell Mol Life Sci. 2016;73:3745-60 pubmed publisher
|
El Khoury N, Gratuze M, Petry F, Papon M, Julien C, Marcouiller F, et al. Hypothermia mediates age-dependent increase of tau phosphorylation in db/db mice. Neurobiol Dis. 2016;88:55-65 pubmed publisher
|
Spears W, Furgerson M, Sweetnam J, Evans P, Gearing M, Fechheimer M, et al. Hirano bodies differentially modulate cell death induced by tau and the amyloid precursor protein intracellular domain. BMC Neurosci. 2014;15:74 pubmed publisher
|
Hedgepeth C, Conrad L, Zhang J, Huang H, Lee V, Klein P. Activation of the Wnt signaling pathway: a molecular mechanism for lithium action. Dev Biol. 1997;185:82-91 pubmed
|