Nanoscale dynamics of cholesterol in the cell membrane

التفاصيل البيبلوغرافية
العنوان: Nanoscale dynamics of cholesterol in the cell membrane
المؤلفون: Edward Lyman, Falk Schneider, Erdinc Sezgin, Martyna Lukoseviciute, Tatjana Sauka-Spengler, Kerstin Pinkwart, Christian Eggeling
المصدر: The Journal of Biological Chemistry
بيانات النشر: Cold Spring Harbor Laboratory, 2019.
سنة النشر: 2019
مصطلحات موضوعية: Male, Fluorescence-lifetime imaging microscopy, model membranes, CHO Cells, Molecular Dynamics Simulation, plasma membrane, 010402 general chemistry, 01 natural sciences, Diffusion, Cell membrane, 03 medical and health sciences, chemistry.chemical_compound, Cricetulus, In vivo, Membrane Biology, membrane structure, medicine, Animals, Nanotechnology, fluorescence correlation spectroscopy (FCS), Nanoscopic scale, Cells, Cultured, Zebrafish, 030304 developmental biology, 0303 health sciences, Cholesterol, Cell Membrane, cholesterol, Biological membrane, membrane asymmetry, In vitro, 0104 chemical sciences, Spectrometry, Fluorescence, medicine.anatomical_structure, Membrane, membrane lipid, chemistry, Biophysics, Female, hindered diffusion, lipids (amino acids, peptides, and proteins), Bodipy-cholesterol, Monte Carlo Method, membrane biophysics
الوصف: Cholesterol constitutes approximately 30%-40% of the mammalian plasma membrane-a larger fraction than of any other single component. It is a major player in numerous signaling processes as well as in shaping molecular membrane architecture. However, our knowledge of the dynamics of cholesterol in the plasma membrane is limited, restricting our understanding of the mechanisms regulating its involvement in cell signaling. Here, we applied advanced fluorescence imaging and spectroscopy approaches on in vitro (model membranes) and in vivo (live cells and embryos) membranes as well as in silico analysis to systematically study the nanoscale dynamics of cholesterol in biological membranes. Our results indicate that cholesterol diffuses faster than phospholipids in live membranes, but not in model membranes. Interestingly, a detailed statistical diffusion analysis suggested two-component diffusion for cholesterol in the plasma membrane of live cells. One of these components was similar to a freely diffusing phospholipid analog, whereas the other one was significantly faster. When a cholesterol analog was localized to the outer leaflet only, the fast diffusion of cholesterol disappeared, and it diffused similarly to phospholipids. Overall, our results suggest that cholesterol diffusion in the cell membrane is heterogeneous and that this diffusional heterogeneity is due to cholesterol's nanoscale interactions and localization in the membrane.
DOI: 10.1101/644005
URL الوصول: https://explore.openaire.eu/search/publication?articleId=doi_dedup___::15b86d9403258af4e00d7af8ee1eb6cb
https://doi.org/10.1101/644005
Rights: OPEN
رقم الانضمام: edsair.doi.dedup.....15b86d9403258af4e00d7af8ee1eb6cb
قاعدة البيانات: OpenAIRE