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Light scattering corrections to linear dichroism spectroscopy for liposomes in shear flow using calcein fluorescence and modified Rayleigh-Gans-Debye-Mie scattering

The interpretation of data from absorbance spectroscopy experiments of liposomes in flow systems is often complicated by the fact that there is currently no easy way to account for scattering artefacts. This has proved particularly problematic for linear dichroism (LD) spectroscopy, which may be use...

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Autores principales: Dorrington, Glen, Chmel, Nikola P., Norton, Stephen R., Wemyss, Alan M., Lloyd, Katherine, Praveen Amarasinghe, D., Rodger, Alison
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Berlin Heidelberg 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6233352/
https://www.ncbi.nlm.nih.gov/pubmed/30255222
http://dx.doi.org/10.1007/s12551-018-0458-8
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author Dorrington, Glen
Chmel, Nikola P.
Norton, Stephen R.
Wemyss, Alan M.
Lloyd, Katherine
Praveen Amarasinghe, D.
Rodger, Alison
author_facet Dorrington, Glen
Chmel, Nikola P.
Norton, Stephen R.
Wemyss, Alan M.
Lloyd, Katherine
Praveen Amarasinghe, D.
Rodger, Alison
author_sort Dorrington, Glen
collection PubMed
description The interpretation of data from absorbance spectroscopy experiments of liposomes in flow systems is often complicated by the fact that there is currently no easy way to account for scattering artefacts. This has proved particularly problematic for linear dichroism (LD) spectroscopy, which may be used to determine binding modes of small molecules, peptides and proteins to liposomes if we can extract the absorbance signal from the combined absorbance/scattering experiment. Equations for a modified Rayleigh-Gans-Debye (RGD) approximation to the turbidity (scattering) LD spectrum are available in the literature though have not been implemented. This review summarises the literature and shows how it can be implemented. The implementation proceeds by first determining volume loss that occurs when a spherical liposome is subjected to flow. Calcein fluorescence can be used for this purpose since at high concentrations (> 60 mM) it has low intensity fluorescence with maxima at 525 and 563 nm whereas at low concentrations (<1 mM) the fluorescence intensity is enhanced and the band shifts to 536 nm. The scattering calculation process yields the average axis ratios of the distorted liposome ellipsoids and extent of orientation of the liposomes in flow. The scattering calculations require methods to estimate liposome integrity, volume loss, and orientation when subjected to shear stresses under flow.
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spelling pubmed-62333522018-11-27 Light scattering corrections to linear dichroism spectroscopy for liposomes in shear flow using calcein fluorescence and modified Rayleigh-Gans-Debye-Mie scattering Dorrington, Glen Chmel, Nikola P. Norton, Stephen R. Wemyss, Alan M. Lloyd, Katherine Praveen Amarasinghe, D. Rodger, Alison Biophys Rev Review The interpretation of data from absorbance spectroscopy experiments of liposomes in flow systems is often complicated by the fact that there is currently no easy way to account for scattering artefacts. This has proved particularly problematic for linear dichroism (LD) spectroscopy, which may be used to determine binding modes of small molecules, peptides and proteins to liposomes if we can extract the absorbance signal from the combined absorbance/scattering experiment. Equations for a modified Rayleigh-Gans-Debye (RGD) approximation to the turbidity (scattering) LD spectrum are available in the literature though have not been implemented. This review summarises the literature and shows how it can be implemented. The implementation proceeds by first determining volume loss that occurs when a spherical liposome is subjected to flow. Calcein fluorescence can be used for this purpose since at high concentrations (> 60 mM) it has low intensity fluorescence with maxima at 525 and 563 nm whereas at low concentrations (<1 mM) the fluorescence intensity is enhanced and the band shifts to 536 nm. The scattering calculation process yields the average axis ratios of the distorted liposome ellipsoids and extent of orientation of the liposomes in flow. The scattering calculations require methods to estimate liposome integrity, volume loss, and orientation when subjected to shear stresses under flow. Springer Berlin Heidelberg 2018-09-25 /pmc/articles/PMC6233352/ /pubmed/30255222 http://dx.doi.org/10.1007/s12551-018-0458-8 Text en © The Author(s) 2018 Open Access This article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Review
Dorrington, Glen
Chmel, Nikola P.
Norton, Stephen R.
Wemyss, Alan M.
Lloyd, Katherine
Praveen Amarasinghe, D.
Rodger, Alison
Light scattering corrections to linear dichroism spectroscopy for liposomes in shear flow using calcein fluorescence and modified Rayleigh-Gans-Debye-Mie scattering
title Light scattering corrections to linear dichroism spectroscopy for liposomes in shear flow using calcein fluorescence and modified Rayleigh-Gans-Debye-Mie scattering
title_full Light scattering corrections to linear dichroism spectroscopy for liposomes in shear flow using calcein fluorescence and modified Rayleigh-Gans-Debye-Mie scattering
title_fullStr Light scattering corrections to linear dichroism spectroscopy for liposomes in shear flow using calcein fluorescence and modified Rayleigh-Gans-Debye-Mie scattering
title_full_unstemmed Light scattering corrections to linear dichroism spectroscopy for liposomes in shear flow using calcein fluorescence and modified Rayleigh-Gans-Debye-Mie scattering
title_short Light scattering corrections to linear dichroism spectroscopy for liposomes in shear flow using calcein fluorescence and modified Rayleigh-Gans-Debye-Mie scattering
title_sort light scattering corrections to linear dichroism spectroscopy for liposomes in shear flow using calcein fluorescence and modified rayleigh-gans-debye-mie scattering
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6233352/
https://www.ncbi.nlm.nih.gov/pubmed/30255222
http://dx.doi.org/10.1007/s12551-018-0458-8
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