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On the role of curved membrane nanodomains and passive and active skeleton forces in the determination of cell shape and membrane budding
ID
Mesarec, Luka
(
Author
),
ID
Drab, Mitja
(
Author
),
ID
Penič, Samo
(
Author
),
ID
Kralj-Iglič, Veronika
(
Author
),
ID
Iglič, Aleš
(
Author
)
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MD5: 6949A1CC45C28D43A0E5A29A76B4AC56
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https://www.mdpi.com/1422-0067/22/5/2348
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Abstract
Biological membranes are composed of isotropic and anisotropic curved nanodomains. Anisotropic membrane components, such as Bin/Amphiphysin/Rvs (BAR) superfamily protein domains, could trigger/facilitate the growth of membrane tubular protrusions, while isotropic curved nanodomains may induce undulated (necklace-like) membrane protrusions. We review the role of isotropic and anisotropic membrane nanodomains in stability of tubular and undulated membrane structures generated or stabilized by cyto- or membrane-skeleton. We also describe the theory of spontaneous self-assembly of isotropic curved membrane nanodomains and derive the critical concentration above which the spontaneous necklace-like membrane protrusion growth is favorable. We show that the actin cytoskeleton growth inside the vesicle or cell can change its equilibrium shape, induce higher degree of segregation of membrane nanodomains or even alter the average orientation angle of anisotropic nanodomains such as BAR domains. These effects may indicate whether the actin cytoskeleton role is only to stabilize membrane protrusions or to generate them by stretching the vesicle membrane. Furthermore, we demonstrate that by taking into account the in-plane orientational ordering of anisotropic membrane nanodomains, direct interactions between them and the extrinsic (deviatoric) curvature elasticity, it is possible to explain the experimentally observed stability of oblate (discocyte) shapes of red blood cells in a broad interval of cell reduced volume. Finally, we present results of numerical calculations and Monte-Carlo simulations which indicate that the active forces of membrane skeleton and cytoskeleton applied to plasma membrane may considerably influence cell shape and membrane budding.
Language:
English
Keywords:
cytoskeleton
,
membrane skeleton
,
cell shape
,
orientational ordering
,
actin filaments
,
active force
,
BAR domains
,
anisotropic shape of molecules
,
NMIIA motor domains
,
membrane budding
Work type:
Article
Typology:
1.02 - Review Article
Organization:
FE - Faculty of Electrical Engineering
ZF - Faculty of Health Sciences
Publication status:
Published
Publication version:
Version of Record
Year:
2021
Number of pages:
47 str.
Numbering:
Vol. 22, iss. 5, art. 2348
PID:
20.500.12556/RUL-135022
UDC:
577
ISSN on article:
1422-0067
DOI:
10.3390/ijms22052348
COBISS.SI-ID:
53353987
Publication date in RUL:
17.02.2022
Views:
871
Downloads:
194
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Record is a part of a journal
Title:
International journal of molecular sciences
Shortened title:
Int. j. mol. sci.
Publisher:
MDPI
ISSN:
1422-0067
COBISS.SI-ID:
2779162
Licences
License:
CC BY 4.0, Creative Commons Attribution 4.0 International
Link:
http://creativecommons.org/licenses/by/4.0/
Description:
This is the standard Creative Commons license that gives others maximum freedom to do what they want with the work as long as they credit the author.
Licensing start date:
01.03.2021
Secondary language
Language:
Slovenian
Keywords:
citoskelet
,
membranski skelet
,
oblika celic
,
orientacijski red
,
aktinski filamenti
,
aktivna sila
,
BAR domene
,
anizotropna oblika molekul
,
motorne domene NMIIA
,
brstenje membran
Projects
Funder:
EC - European Commission
Funding programme:
H2020
Project number:
801338
Name:
Extracellular vesicles from a natural source for tailor-made nanomaterials
Acronym:
VES4US
Funder:
ARRS - Slovenian Research Agency
Project number:
P2-0232
Name:
Funkcije in tehnologije kompleksnih sistemov
Funder:
ARRS - Slovenian Research Agency
Project number:
P3-0388
Name:
Mehanizmi varovanja zdravja
Funder:
ARRS - Slovenian Research Agency
Project number:
J1-9162
Name:
Neurotoksičnost ali neuroprotektivnost nanomaterialov: vpliv biokorone
Funder:
ARRS - Slovenian Research Agency
Project number:
J2-8166
Name:
Anizotropni magnetni nanodelci za magneto-mehansko zdravljenje raka
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