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Revealing the Effects of Nanoscale Membrane Curvature on Lipid Mobility

Recent advances in nanoengineering and super-resolution microscopy have enabled new capabilities for creating and observing membrane curvature. However, the effects of curvature on single-lipid diffusion have yet to be revealed. The simulations presented here describe the capabilities of varying exp...

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Autores principales: Kabbani, Abir Maarouf, Woodward, Xinxin, Kelly, Christopher V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5746819/
https://www.ncbi.nlm.nih.gov/pubmed/29057801
http://dx.doi.org/10.3390/membranes7040060
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author Kabbani, Abir Maarouf
Woodward, Xinxin
Kelly, Christopher V.
author_facet Kabbani, Abir Maarouf
Woodward, Xinxin
Kelly, Christopher V.
author_sort Kabbani, Abir Maarouf
collection PubMed
description Recent advances in nanoengineering and super-resolution microscopy have enabled new capabilities for creating and observing membrane curvature. However, the effects of curvature on single-lipid diffusion have yet to be revealed. The simulations presented here describe the capabilities of varying experimental methods for revealing the effects of nanoscale curvature on single-molecule mobility. Traditionally, lipid mobility is revealed through fluorescence recovery after photobleaching (FRAP), fluorescence correlation spectroscopy (FCS), and single particle tracking (SPT). However, these techniques vary greatly in their ability to detect the effects of nanoscale curvature on lipid behavior. Traditionally, FRAP and FCS depend on diffraction-limited illumination and detection. A simulation of FRAP shows minimal effects on lipids diffusion due to a 50 nm radius membrane bud. Throughout the stages of the budding process, FRAP detected minimal changes in lipid recovery time due to the curvature versus flat membrane. Simulated FCS demonstrated small effects due to a 50 nm radius membrane bud that was more apparent with curvature-dependent lipid mobility changes. However, SPT achieves a sub-diffraction-limited resolution of membrane budding and lipid mobility through the identification of the single-lipid positions with ≤15 nm spatial and ≤20 ms temporal resolution. By mapping the single-lipid step lengths to locations on the membrane, the effects of membrane topography and curvature could be correlated to the effective membrane viscosity. Single-fluorophore localization techniques, such SPT, can detect membrane curvature and its effects on lipid behavior. These simulations and discussion provide a guideline for optimizing the experimental procedures in revealing the effects of curvature on lipid mobility and effective local membrane viscosity.
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spelling pubmed-57468192018-01-03 Revealing the Effects of Nanoscale Membrane Curvature on Lipid Mobility Kabbani, Abir Maarouf Woodward, Xinxin Kelly, Christopher V. Membranes (Basel) Article Recent advances in nanoengineering and super-resolution microscopy have enabled new capabilities for creating and observing membrane curvature. However, the effects of curvature on single-lipid diffusion have yet to be revealed. The simulations presented here describe the capabilities of varying experimental methods for revealing the effects of nanoscale curvature on single-molecule mobility. Traditionally, lipid mobility is revealed through fluorescence recovery after photobleaching (FRAP), fluorescence correlation spectroscopy (FCS), and single particle tracking (SPT). However, these techniques vary greatly in their ability to detect the effects of nanoscale curvature on lipid behavior. Traditionally, FRAP and FCS depend on diffraction-limited illumination and detection. A simulation of FRAP shows minimal effects on lipids diffusion due to a 50 nm radius membrane bud. Throughout the stages of the budding process, FRAP detected minimal changes in lipid recovery time due to the curvature versus flat membrane. Simulated FCS demonstrated small effects due to a 50 nm radius membrane bud that was more apparent with curvature-dependent lipid mobility changes. However, SPT achieves a sub-diffraction-limited resolution of membrane budding and lipid mobility through the identification of the single-lipid positions with ≤15 nm spatial and ≤20 ms temporal resolution. By mapping the single-lipid step lengths to locations on the membrane, the effects of membrane topography and curvature could be correlated to the effective membrane viscosity. Single-fluorophore localization techniques, such SPT, can detect membrane curvature and its effects on lipid behavior. These simulations and discussion provide a guideline for optimizing the experimental procedures in revealing the effects of curvature on lipid mobility and effective local membrane viscosity. MDPI 2017-10-18 /pmc/articles/PMC5746819/ /pubmed/29057801 http://dx.doi.org/10.3390/membranes7040060 Text en © 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kabbani, Abir Maarouf
Woodward, Xinxin
Kelly, Christopher V.
Revealing the Effects of Nanoscale Membrane Curvature on Lipid Mobility
title Revealing the Effects of Nanoscale Membrane Curvature on Lipid Mobility
title_full Revealing the Effects of Nanoscale Membrane Curvature on Lipid Mobility
title_fullStr Revealing the Effects of Nanoscale Membrane Curvature on Lipid Mobility
title_full_unstemmed Revealing the Effects of Nanoscale Membrane Curvature on Lipid Mobility
title_short Revealing the Effects of Nanoscale Membrane Curvature on Lipid Mobility
title_sort revealing the effects of nanoscale membrane curvature on lipid mobility
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5746819/
https://www.ncbi.nlm.nih.gov/pubmed/29057801
http://dx.doi.org/10.3390/membranes7040060
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