Tensile force-induced cytoskeletal remodeling: Mechanics before chemistry.
Understanding cellular remodeling in response to mechanical stimuli is a critical step in elucidating mechanical activation of biochemical signaling pathways. Experimental evidence indicates that external stress-induced subcellular adaptation is accomplished through dynamic cytoskeletal reorganizati...
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2020-06-01
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Series: | PLoS Computational Biology |
Online Access: | https://doi.org/10.1371/journal.pcbi.1007693 |
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doaj-925214784ef44ba496c305d032eba8652021-05-14T04:31:08ZengPublic Library of Science (PLoS)PLoS Computational Biology1553-734X1553-73582020-06-01166e100769310.1371/journal.pcbi.1007693Tensile force-induced cytoskeletal remodeling: Mechanics before chemistry.Xiaona LiQin NiXiuxiu HeJun KongSoon-Mi LimGaregin A PapoianJerome P TrzeciakowskiAndreea TracheYi JiangUnderstanding cellular remodeling in response to mechanical stimuli is a critical step in elucidating mechanical activation of biochemical signaling pathways. Experimental evidence indicates that external stress-induced subcellular adaptation is accomplished through dynamic cytoskeletal reorganization. To study the interactions between subcellular structures involved in transducing mechanical signals, we combined experimental data and computational simulations to evaluate real-time mechanical adaptation of the actin cytoskeletal network. Actin cytoskeleton was imaged at the same time as an external tensile force was applied to live vascular smooth muscle cells using a fibronectin-functionalized atomic force microscope probe. Moreover, we performed computational simulations of active cytoskeletal networks under an external tensile force. The experimental data and simulation results suggest that mechanical structural adaptation occurs before chemical adaptation during filament bundle formation: actin filaments first align in the direction of the external force by initializing anisotropic filament orientations, then the chemical evolution of the network follows the anisotropic structures to further develop the bundle-like geometry. Our findings present an alternative two-step explanation for the formation of actin bundles due to mechanical stimulation and provide new insights into the mechanism of mechanotransduction.https://doi.org/10.1371/journal.pcbi.1007693 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xiaona Li Qin Ni Xiuxiu He Jun Kong Soon-Mi Lim Garegin A Papoian Jerome P Trzeciakowski Andreea Trache Yi Jiang |
spellingShingle |
Xiaona Li Qin Ni Xiuxiu He Jun Kong Soon-Mi Lim Garegin A Papoian Jerome P Trzeciakowski Andreea Trache Yi Jiang Tensile force-induced cytoskeletal remodeling: Mechanics before chemistry. PLoS Computational Biology |
author_facet |
Xiaona Li Qin Ni Xiuxiu He Jun Kong Soon-Mi Lim Garegin A Papoian Jerome P Trzeciakowski Andreea Trache Yi Jiang |
author_sort |
Xiaona Li |
title |
Tensile force-induced cytoskeletal remodeling: Mechanics before chemistry. |
title_short |
Tensile force-induced cytoskeletal remodeling: Mechanics before chemistry. |
title_full |
Tensile force-induced cytoskeletal remodeling: Mechanics before chemistry. |
title_fullStr |
Tensile force-induced cytoskeletal remodeling: Mechanics before chemistry. |
title_full_unstemmed |
Tensile force-induced cytoskeletal remodeling: Mechanics before chemistry. |
title_sort |
tensile force-induced cytoskeletal remodeling: mechanics before chemistry. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Computational Biology |
issn |
1553-734X 1553-7358 |
publishDate |
2020-06-01 |
description |
Understanding cellular remodeling in response to mechanical stimuli is a critical step in elucidating mechanical activation of biochemical signaling pathways. Experimental evidence indicates that external stress-induced subcellular adaptation is accomplished through dynamic cytoskeletal reorganization. To study the interactions between subcellular structures involved in transducing mechanical signals, we combined experimental data and computational simulations to evaluate real-time mechanical adaptation of the actin cytoskeletal network. Actin cytoskeleton was imaged at the same time as an external tensile force was applied to live vascular smooth muscle cells using a fibronectin-functionalized atomic force microscope probe. Moreover, we performed computational simulations of active cytoskeletal networks under an external tensile force. The experimental data and simulation results suggest that mechanical structural adaptation occurs before chemical adaptation during filament bundle formation: actin filaments first align in the direction of the external force by initializing anisotropic filament orientations, then the chemical evolution of the network follows the anisotropic structures to further develop the bundle-like geometry. Our findings present an alternative two-step explanation for the formation of actin bundles due to mechanical stimulation and provide new insights into the mechanism of mechanotransduction. |
url |
https://doi.org/10.1371/journal.pcbi.1007693 |
work_keys_str_mv |
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