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A tug of war between filament treadmilling and myosin induced contractility generates actin rings

In most eukaryotic cells, actin filaments assemble into a shell-like actin cortex under the plasma membrane, controlling cellular morphology, mechanics, and signaling. The actin cortex is highly polymorphic, adopting diverse forms such as the ring-like structures found in podosomes, axonal rings, an...

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Autores principales: Ni, Qin, Wagh, Kaustubh, Pathni, Aashli, Ni, Haoran, Vashisht, Vishavdeep, Upadhyaya, Arpita, Papoian, Garegin A
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9678364/
https://www.ncbi.nlm.nih.gov/pubmed/36269229
http://dx.doi.org/10.7554/eLife.82658
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author Ni, Qin
Wagh, Kaustubh
Pathni, Aashli
Ni, Haoran
Vashisht, Vishavdeep
Upadhyaya, Arpita
Papoian, Garegin A
author_facet Ni, Qin
Wagh, Kaustubh
Pathni, Aashli
Ni, Haoran
Vashisht, Vishavdeep
Upadhyaya, Arpita
Papoian, Garegin A
author_sort Ni, Qin
collection PubMed
description In most eukaryotic cells, actin filaments assemble into a shell-like actin cortex under the plasma membrane, controlling cellular morphology, mechanics, and signaling. The actin cortex is highly polymorphic, adopting diverse forms such as the ring-like structures found in podosomes, axonal rings, and immune synapses. The biophysical principles that underlie the formation of actin rings and cortices remain unknown. Using a molecular simulation platform called MEDYAN, we discovered that varying the filament treadmilling rate and myosin concentration induces a finite size phase transition in actomyosin network structures. We found that actomyosin networks condense into clusters at low treadmilling rates or high myosin concentrations but form ring-like or cortex-like structures at high treadmilling rates and low myosin concentrations. This mechanism is supported by our corroborating experiments on live T cells, which exhibit ring-like actin networks upon activation by stimulatory antibody. Upon disruption of filament treadmilling or enhancement of myosin activity, the pre-existing actin rings are disrupted into actin clusters or collapse towards the network center respectively. Our analyses suggest that the ring-like actin structure is a preferred state of low mechanical energy, which is, importantly, only reachable at sufficiently high treadmilling rates.
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spelling pubmed-96783642022-11-22 A tug of war between filament treadmilling and myosin induced contractility generates actin rings Ni, Qin Wagh, Kaustubh Pathni, Aashli Ni, Haoran Vashisht, Vishavdeep Upadhyaya, Arpita Papoian, Garegin A eLife Computational and Systems Biology In most eukaryotic cells, actin filaments assemble into a shell-like actin cortex under the plasma membrane, controlling cellular morphology, mechanics, and signaling. The actin cortex is highly polymorphic, adopting diverse forms such as the ring-like structures found in podosomes, axonal rings, and immune synapses. The biophysical principles that underlie the formation of actin rings and cortices remain unknown. Using a molecular simulation platform called MEDYAN, we discovered that varying the filament treadmilling rate and myosin concentration induces a finite size phase transition in actomyosin network structures. We found that actomyosin networks condense into clusters at low treadmilling rates or high myosin concentrations but form ring-like or cortex-like structures at high treadmilling rates and low myosin concentrations. This mechanism is supported by our corroborating experiments on live T cells, which exhibit ring-like actin networks upon activation by stimulatory antibody. Upon disruption of filament treadmilling or enhancement of myosin activity, the pre-existing actin rings are disrupted into actin clusters or collapse towards the network center respectively. Our analyses suggest that the ring-like actin structure is a preferred state of low mechanical energy, which is, importantly, only reachable at sufficiently high treadmilling rates. eLife Sciences Publications, Ltd 2022-10-21 /pmc/articles/PMC9678364/ /pubmed/36269229 http://dx.doi.org/10.7554/eLife.82658 Text en © 2022, Ni et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Computational and Systems Biology
Ni, Qin
Wagh, Kaustubh
Pathni, Aashli
Ni, Haoran
Vashisht, Vishavdeep
Upadhyaya, Arpita
Papoian, Garegin A
A tug of war between filament treadmilling and myosin induced contractility generates actin rings
title A tug of war between filament treadmilling and myosin induced contractility generates actin rings
title_full A tug of war between filament treadmilling and myosin induced contractility generates actin rings
title_fullStr A tug of war between filament treadmilling and myosin induced contractility generates actin rings
title_full_unstemmed A tug of war between filament treadmilling and myosin induced contractility generates actin rings
title_short A tug of war between filament treadmilling and myosin induced contractility generates actin rings
title_sort tug of war between filament treadmilling and myosin induced contractility generates actin rings
topic Computational and Systems Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9678364/
https://www.ncbi.nlm.nih.gov/pubmed/36269229
http://dx.doi.org/10.7554/eLife.82658
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