Reference |
---|
Dong J, Du X, Wang H, Wang J, Lu C, Chen X, et al. Allosteric enhancement of ORP1-mediated cholesterol transport by PI(4,5)P2/PI(3,4)P2. Nat Commun. 2019;10:829 pubmed publisher
|
Usery R, Enoki T, Wickramasinghe S, Nguyen V, Ackerman D, Greathouse D, et al. Membrane Bending Moduli of Coexisting Liquid Phases Containing Transmembrane Peptide. Biophys J. 2018;114:2152-2164 pubmed publisher
|
Sobajima T, Yoshimura S, Maeda T, Miyata H, Miyoshi E, Harada A. The Rab11-binding protein RELCH/KIAA1468 controls intracellular cholesterol distribution. J Cell Biol. 2018;217:1777-1796 pubmed publisher
|
Ano Y, Kutsukake T, Hoshi A, Yoshida A, Nakayama H. Identification of a novel dehydroergosterol enhancing microglial anti-inflammatory activity in a dairy product fermented with Penicillium candidum. PLoS ONE. 2015;10:e0116598 pubmed publisher
|
Ayling L, Briddon S, Halls M, Hammond G, Vaca L, Pacheco J, et al. Adenylyl cyclase AC8 directly controls its micro-environment by recruiting the actin cytoskeleton in a cholesterol-rich milieu. J Cell Sci. 2012;125:869-86 pubmed publisher
|
Maxfield F, Wüstner D. Analysis of cholesterol trafficking with fluorescent probes. Methods Cell Biol. 2012;108:367-93 pubmed publisher
|
de Saint Jean M, Delfosse V, Douguet D, Chicanne G, Payrastre B, Bourguet W, et al. Osh4p exchanges sterols for phosphatidylinositol 4-phosphate between lipid bilayers. J Cell Biol. 2011;195:965-78 pubmed publisher
|
Levine T. Lipid traffic: Osh4p makes an unexpected exchange. J Cell Biol. 2011;195:927-9 pubmed publisher
|
Mesmin B, Pipalia N, Lund F, Ramlall T, Sokolov A, Eliezer D, et al. STARD4 abundance regulates sterol transport and sensing. Mol Biol Cell. 2011;22:4004-15 pubmed publisher
|
McCauliff L, Xu Z, Storch J. Sterol transfer between cyclodextrin and membranes: similar but not identical mechanism to NPC2-mediated cholesterol transfer. Biochemistry. 2011;50:7341-7349 pubmed publisher
|
Georgiev A, Sullivan D, Kersting M, Dittman J, Beh C, Menon A. Osh proteins regulate membrane sterol organization but are not required for sterol movement between the ER and PM. Traffic. 2011;12:1341-55 pubmed publisher
|
CHAZOTTE B. Labeling membranes with fluorescent cholesterols. Cold Spring Harb Protoc. 2011;2011:pdb.prot5624 pubmed publisher
|
Wüstner D, Solanko L, Sokol E, Garvik O, Li Z, Bittman R, et al. Quantitative assessment of sterol traffic in living cells by dual labeling with dehydroergosterol and BODIPY-cholesterol. Chem Phys Lipids. 2011;164:221-35 pubmed publisher
|
Wüstner D, Brewer J, BAGATOLLI L, Sage D. Potential of ultraviolet wide-field imaging and multiphoton microscopy for analysis of dehydroergosterol in cellular membranes. Microsc Res Tech. 2011;74:92-108 pubmed publisher
|
Kohut P, Wüstner D, Hronska L, Kuchler K, Hapala I, Valachovic M. The role of ABC proteins Aus1p and Pdr11p in the uptake of external sterols in yeast: dehydroergosterol fluorescence study. Biochem Biophys Res Commun. 2011;404:233-8 pubmed publisher
|
Heberle F, Wu J, Goh S, Petruzielo R, Feigenson G. Comparison of three ternary lipid bilayer mixtures: FRET and ESR reveal nanodomains. Biophys J. 2010;99:3309-18 pubmed publisher
|
Wüstner D, Landt Larsen A, Faergeman N, Brewer J, Sage D. Selective visualization of fluorescent sterols in Caenorhabditis elegans by bleach-rate-based image segmentation. Traffic. 2010;11:440-54 pubmed publisher
|
Garvik O, Benediktson P, Simonsen A, Ipsen J, Wüstner D. The fluorescent cholesterol analog dehydroergosterol induces liquid-ordered domains in model membranes. Chem Phys Lipids. 2009;159:114-8 pubmed publisher
|
Qiu L, Lewis A, Como J, Vaughn M, Huang J, Somerharju P, et al. Cholesterol modulates the interaction of beta-amyloid peptide with lipid bilayers. Biophys J. 2009;96:4299-307 pubmed publisher
|
McIntosh A, Atshaves B, Gallegos A, Storey S, Reibenspies J, Kier A, et al. Structure of dehydroergosterol monohydrate and interaction with sterol carrier protein-2. Lipids. 2008;43:1165-84 pubmed publisher
|
Xu Z, Farver W, Kodukula S, Storch J. Regulation of sterol transport between membranes and NPC2. Biochemistry. 2008;47:11134-43 pubmed publisher
|
Wüstner D, Faergeman N. Spatiotemporal analysis of endocytosis and membrane distribution of fluorescent sterols in living cells. Histochem Cell Biol. 2008;130:891-908 pubmed publisher
|
Olsher M, Chong P. Sterol superlattice affects antioxidant potency and can be used to assess adverse effects of antioxidants. Anal Biochem. 2008;382:1-8 pubmed publisher
|
Wüstner D, Faergeman N. Chromatic aberration correction and deconvolution for UV sensitive imaging of fluorescent sterols in cytoplasmic lipid droplets. Cytometry A. 2008;73:727-44 pubmed publisher
|
McIntosh A, Atshaves B, Huang H, Gallegos A, Kier A, Schroeder F. Fluorescence techniques using dehydroergosterol to study cholesterol trafficking. Lipids. 2008;43:1185-208 pubmed publisher
|
Wüstner D. Free-cholesterol loading does not trigger phase separation of the fluorescent sterol dehydroergosterol in the plasma membrane of macrophages. Chem Phys Lipids. 2008;154:129-36 pubmed publisher
|
Petersen N, Faergeman N, Faegeman N, Yu L, Wüstner D. Kinetic imaging of NPC1L1 and sterol trafficking between plasma membrane and recycling endosomes in hepatoma cells. J Lipid Res. 2008;49:2023-37 pubmed publisher
|
Diaz G, Batetta B, Sanna F, Uda S, Reali C, Angius F, et al. Lipid droplet changes in proliferating and quiescent 3T3 fibroblasts. Histochem Cell Biol. 2008;129:611-21 pubmed publisher
|
McIntosh A, Atshaves B, Huang H, Gallegos A, Kier A, Schroeder F, et al. Multiphoton laser-scanning microscopy and spatial analysis of dehydroergosterol distributions on plasma membrane of living cells. Methods Mol Biol. 2007;398:85-105 pubmed publisher
|
Chong P, Olsher M. Fluorometric assay for detection of sterol oxidation in liposomal membranes. Methods Mol Biol. 2007;400:145-58 pubmed
|
Schroeder F. Fluorescent sterols: probe molecules of membrane structure and function. Prog Lipid Res. 1984;23:97-113 pubmed
|