Light Scattering By Optically-Trapped Vesicles Affords Unprecedented Temporal Resolution Of Lipid-Raft Dynamics
Abstract A spectroscopic technique is presented that is able to identify rapid changes in the bending modulus and fluidity of vesicle lipid bilayers on the micrometer scale, and distinguish between the presence and absence of heterogeneities in lipid-packing order. Individual unilamellar vesicles ha...
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2017-08-01
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Online Access: | https://doi.org/10.1038/s41598-017-08980-1 |
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doaj-7dc54b85b5f0487bad112e1f39b138b82020-12-08T03:08:35ZengNature Publishing GroupScientific Reports2045-23222017-08-017111110.1038/s41598-017-08980-1Light Scattering By Optically-Trapped Vesicles Affords Unprecedented Temporal Resolution Of Lipid-Raft DynamicsLiam Collard0David Perez-Guaita1Bayan H. A. Faraj2Bayden R. Wood3Russell Wallis4Peter W. Andrew5Andrew J. Hudson6Department of Chemistry, University of LeicesterDepartment of Chemistry, Monash University, ClaytonDepartment of Infection, Immunity and Inflammation, University of LeicesterDepartment of Chemistry, Monash University, ClaytonDepartment of Infection, Immunity and Inflammation, University of LeicesterDepartment of Infection, Immunity and Inflammation, University of LeicesterDepartment of Chemistry, University of LeicesterAbstract A spectroscopic technique is presented that is able to identify rapid changes in the bending modulus and fluidity of vesicle lipid bilayers on the micrometer scale, and distinguish between the presence and absence of heterogeneities in lipid-packing order. Individual unilamellar vesicles have been isolated using laser tweezers and, by measuring the intensity modulation of elastic back-scattered light, changes in the biophysical properties of lipid bilayers were revealed. Our approach offers unprecedented temporal resolution and, uniquely, physical transformations of lipid bilayers can be monitored on a length scale of micrometers. As an example, the deformation of a membrane bilayer following the gel-to-fluid phase transition in a pure phospholipid vesicle was observed to take place across an interval of 54 ± 5 ms corresponding to an estimated full-width of only ~1 m°C. Dynamic heterogeneities in packing order were detected in mixed-lipid bilayers. Using a ternary mixture of lipids, the modulated-intensity profile of elastic back-scattered light from an optically-trapped vesicle revealed an abrupt change in the bending modulus of the bilayer which could be associated with the dissolution of ordered microdomains (i.e., lipid rafts). This occurred across an interval of 30 ± 5 ms (equivalent to ~1 m°C).https://doi.org/10.1038/s41598-017-08980-1 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Liam Collard David Perez-Guaita Bayan H. A. Faraj Bayden R. Wood Russell Wallis Peter W. Andrew Andrew J. Hudson |
spellingShingle |
Liam Collard David Perez-Guaita Bayan H. A. Faraj Bayden R. Wood Russell Wallis Peter W. Andrew Andrew J. Hudson Light Scattering By Optically-Trapped Vesicles Affords Unprecedented Temporal Resolution Of Lipid-Raft Dynamics Scientific Reports |
author_facet |
Liam Collard David Perez-Guaita Bayan H. A. Faraj Bayden R. Wood Russell Wallis Peter W. Andrew Andrew J. Hudson |
author_sort |
Liam Collard |
title |
Light Scattering By Optically-Trapped Vesicles Affords Unprecedented Temporal Resolution Of Lipid-Raft Dynamics |
title_short |
Light Scattering By Optically-Trapped Vesicles Affords Unprecedented Temporal Resolution Of Lipid-Raft Dynamics |
title_full |
Light Scattering By Optically-Trapped Vesicles Affords Unprecedented Temporal Resolution Of Lipid-Raft Dynamics |
title_fullStr |
Light Scattering By Optically-Trapped Vesicles Affords Unprecedented Temporal Resolution Of Lipid-Raft Dynamics |
title_full_unstemmed |
Light Scattering By Optically-Trapped Vesicles Affords Unprecedented Temporal Resolution Of Lipid-Raft Dynamics |
title_sort |
light scattering by optically-trapped vesicles affords unprecedented temporal resolution of lipid-raft dynamics |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2017-08-01 |
description |
Abstract A spectroscopic technique is presented that is able to identify rapid changes in the bending modulus and fluidity of vesicle lipid bilayers on the micrometer scale, and distinguish between the presence and absence of heterogeneities in lipid-packing order. Individual unilamellar vesicles have been isolated using laser tweezers and, by measuring the intensity modulation of elastic back-scattered light, changes in the biophysical properties of lipid bilayers were revealed. Our approach offers unprecedented temporal resolution and, uniquely, physical transformations of lipid bilayers can be monitored on a length scale of micrometers. As an example, the deformation of a membrane bilayer following the gel-to-fluid phase transition in a pure phospholipid vesicle was observed to take place across an interval of 54 ± 5 ms corresponding to an estimated full-width of only ~1 m°C. Dynamic heterogeneities in packing order were detected in mixed-lipid bilayers. Using a ternary mixture of lipids, the modulated-intensity profile of elastic back-scattered light from an optically-trapped vesicle revealed an abrupt change in the bending modulus of the bilayer which could be associated with the dissolution of ordered microdomains (i.e., lipid rafts). This occurred across an interval of 30 ± 5 ms (equivalent to ~1 m°C). |
url |
https://doi.org/10.1038/s41598-017-08980-1 |
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