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Minimizing isotropic and deviatoric membrane energy – An unifying formation mechanism of different cellular membrane nanovesicle types

Tiny membrane-enclosed cellular fragments that can mediate interactions between cells and organisms have recently become a subject of increasing attention. In this work the mechanism of formation of cell membrane nanovesicles (CNVs) was studied experimentally and theoretically. CNVs were isolated by...

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Autores principales: Kralj-Iglič, Veronika, Pocsfalvi, Gabriella, Mesarec, Luka, Šuštar, Vid, Hägerstrand, Henry, Iglič, Aleš
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7775103/
https://www.ncbi.nlm.nih.gov/pubmed/33382808
http://dx.doi.org/10.1371/journal.pone.0244796
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author Kralj-Iglič, Veronika
Pocsfalvi, Gabriella
Mesarec, Luka
Šuštar, Vid
Hägerstrand, Henry
Iglič, Aleš
author_facet Kralj-Iglič, Veronika
Pocsfalvi, Gabriella
Mesarec, Luka
Šuštar, Vid
Hägerstrand, Henry
Iglič, Aleš
author_sort Kralj-Iglič, Veronika
collection PubMed
description Tiny membrane-enclosed cellular fragments that can mediate interactions between cells and organisms have recently become a subject of increasing attention. In this work the mechanism of formation of cell membrane nanovesicles (CNVs) was studied experimentally and theoretically. CNVs were isolated by centrifugation and washing of blood cells and observed by optical microscopy and scanning electron microscopy. The shape of the biological membrane in the budding process, as observed in phospholipid vesicles, in erythrocytes and in CNVs, was described by an unifying model. Taking the mean curvature h and the curvature deviator d of the membrane surface as the relevant parameters, the shape and the distribution of membrane constituents were determined theoretically by minimization of membrane free energy. Considering these results and previous results on vesiculation of red blood cells it was interpreted that the budding processes may lead to formation of different types of CNVs as regards the compartment (exo/endovesicles), shape (spherical/tubular/torocytic) and composition (enriched/depleted in particular kinds of molecules). It was concluded that the specificity of pinched off nanovesicles derives from the shape of the membrane constituents and not primarily from their chemical identity, which explains evidences on great heterogeneity of isolated extracellular vesicles with respect to composition.
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spelling pubmed-77751032021-01-11 Minimizing isotropic and deviatoric membrane energy – An unifying formation mechanism of different cellular membrane nanovesicle types Kralj-Iglič, Veronika Pocsfalvi, Gabriella Mesarec, Luka Šuštar, Vid Hägerstrand, Henry Iglič, Aleš PLoS One Research Article Tiny membrane-enclosed cellular fragments that can mediate interactions between cells and organisms have recently become a subject of increasing attention. In this work the mechanism of formation of cell membrane nanovesicles (CNVs) was studied experimentally and theoretically. CNVs were isolated by centrifugation and washing of blood cells and observed by optical microscopy and scanning electron microscopy. The shape of the biological membrane in the budding process, as observed in phospholipid vesicles, in erythrocytes and in CNVs, was described by an unifying model. Taking the mean curvature h and the curvature deviator d of the membrane surface as the relevant parameters, the shape and the distribution of membrane constituents were determined theoretically by minimization of membrane free energy. Considering these results and previous results on vesiculation of red blood cells it was interpreted that the budding processes may lead to formation of different types of CNVs as regards the compartment (exo/endovesicles), shape (spherical/tubular/torocytic) and composition (enriched/depleted in particular kinds of molecules). It was concluded that the specificity of pinched off nanovesicles derives from the shape of the membrane constituents and not primarily from their chemical identity, which explains evidences on great heterogeneity of isolated extracellular vesicles with respect to composition. Public Library of Science 2020-12-31 /pmc/articles/PMC7775103/ /pubmed/33382808 http://dx.doi.org/10.1371/journal.pone.0244796 Text en © 2020 Kralj-Iglič et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Kralj-Iglič, Veronika
Pocsfalvi, Gabriella
Mesarec, Luka
Šuštar, Vid
Hägerstrand, Henry
Iglič, Aleš
Minimizing isotropic and deviatoric membrane energy – An unifying formation mechanism of different cellular membrane nanovesicle types
title Minimizing isotropic and deviatoric membrane energy – An unifying formation mechanism of different cellular membrane nanovesicle types
title_full Minimizing isotropic and deviatoric membrane energy – An unifying formation mechanism of different cellular membrane nanovesicle types
title_fullStr Minimizing isotropic and deviatoric membrane energy – An unifying formation mechanism of different cellular membrane nanovesicle types
title_full_unstemmed Minimizing isotropic and deviatoric membrane energy – An unifying formation mechanism of different cellular membrane nanovesicle types
title_short Minimizing isotropic and deviatoric membrane energy – An unifying formation mechanism of different cellular membrane nanovesicle types
title_sort minimizing isotropic and deviatoric membrane energy – an unifying formation mechanism of different cellular membrane nanovesicle types
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7775103/
https://www.ncbi.nlm.nih.gov/pubmed/33382808
http://dx.doi.org/10.1371/journal.pone.0244796
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