A comparative study on fluorescent cholesterol analogs as versatile cellular reporters

Cholesterol (Chol) is a crucial component of cellular membranes, but knowledge of its intracellular dynamics is scarce. Thus, it is of utmost interest to develop tools for visualization of Chol organization and dynamics in cells and tissues. For this purpose, many studies make use of fluorescently labeled Chol analogs. Unfortunately, the introduction of the label may influence the characteristics of the analog, such as its localization, interaction, and trafficking in cells; hence, it is important to get knowledge of such bias. In this report, we compared different fluorescent lipid analogs for their performance in cellular assays: 1) plasma membrane incorporation, specifically the preference for more ordered membrane environments in phase-separated giant unilamellar vesicles and giant plasma membrane vesicles; 2) cellular trafficking, specifically subcellular localization in Niemann-Pick type C disease cells; and 3) applicability in fluorescence correlation spectroscopy (FCS)-based and super-resolution stimulated emission depletion-FCS-based measurements of membrane diffusion dynamics. The analogs exhibited strong differences, with some indicating positive performance in the membrane-based experiments and others in the intracellular trafficking assay. However, none showed positive performance in all assays. Our results constitute a concise guide for the careful use of fluorescent Chol analogs in visualizing cellular Chol dynamics. Cholesterol (Chol) is a crucial component of cellular membranes, but knowledge of its intracellular dynamics is scarce. Thus, it is of utmost interest to develop tools for visualization of Chol organization and dynamics in cells and tissues. For this purpose, many studies make use of fluorescently labeled Chol analogs. Unfortunately, the introduction of the label may influence the characteristics of the analog, such as its localization, interaction, and trafficking in cells; hence, it is important to get knowledge of such bias. In this report, we compared different fluorescent lipid analogs for their performance in cellular assays: 1) plasma membrane incorporation, specifically the preference for more ordered membrane environments in phase-separated giant unilamellar vesicles and giant plasma membrane vesicles; 2) cellular trafficking, specifically subcellular localization in Niemann-Pick type C disease cells; and 3) applicability in fluorescence correlation spectroscopy (FCS)-based and super-resolution stimulated emission depletion-FCS-based measurements of membrane diffusion dynamics. The analogs exhibited strong differences, with some indicating positive performance in the membrane-based experiments and others in the intracellular trafficking assay. However, none showed positive performance in all assays. Our results constitute a concise guide for the careful use of fluorescent Chol analogs in visualizing cellular Chol dynamics. 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Our strong the with some indicating high performance in the membrane-based and others in the intracellular trafficking but none positive performance in all The molecules for visualizing Chol the Chol filipin and Chol Chol, from of and the Chol analogs from Martin from Martin Chol and and with a Chol and the and as A. and in lipid membranes using a fluorescent PubMed Scopus Google The fluorescent analog, as a for environments E. I. M. A. K. diffusion, and of raft lipid analogs in model and cellular plasma Biophys. Acta. PubMed Scopus Google Scholar). and Chol from the as P. correlation spectroscopy for the of membrane dynamics and organization in giant unilamellar 2010; : Scopus Google Scholar). a lipid on a from a lipid of of Chol in for lipid as using M.P. E. J. D. for to lipid membrane PubMed Scopus Google Scholar). lipid in on The using a with for M.P. E. J. D. for to lipid membrane PubMed Scopus Google Scholar). cells with and cells and cells cells in and as E. T. P. K. 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In to all filipin on of cell and for in of to the cells and the cells for for the cells with filipin to the cells on a in the for and the cells For of cells with all fluorescent Chol of cell and for in with fluorescent Chol analogs in for and on the as For of and fluorescent analogs the and for The the of and with a with the and for the fluorescent Chol analogs as for the and with and emission and of the and the fluorescent Chol analogs from the of the labeled cells using the in is and by the correlation J. I. by the correlation is to the A. 2010; PubMed Scopus Google Scholar). of to strong for disease of to for cells to the of a of Chol in In to the in the and we the for both cell and and the 2) for analog, of in the of in the of compared with of in the of and of in the of in the of compared with The is and characteristics of the Chol analog, the of the Chol 1) for the analogs on a with a for fluorescence a an for fluorescence and the for of the correlation with the for a M.P. E. J. 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A comparative study on fluorescent cholesterol analogs as versatile cellular reporters | Litlas