Multiscale modeling and mechanics of filamentous actin cytoskeleton

被引:0
|
作者
Hidetaka Yamaoka
Shinji Matsushita
Yoshitaka Shimada
Taiji Adachi
机构
[1] VCAD System Research Program,Computational Cell Biomechanics Team
[2] RIKEN,Department of Biomechanics, Institute for Frontier Medical Sciences
[3] Kyoto University,Department of Micro Engineering, Graduate School of Engineering
[4] Kyoto University,Department of Mechanical Engineering and Science, Graduate School of Engineering
[5] Kyoto University,undefined
关键词
Actin filament; Multiscale modeling and simulation; Coarse-grained modeling; Computational biomechanics; Molecular dynamics; Continuum dynamics; Mechanobiology; Biomechanics;
D O I
暂无
中图分类号
学科分类号
摘要
The adaptive structure and functional changes of the actin cytoskeleton are induced by its mechanical behavior at various temporal and spatial scales. In particular, the mechanical behaviors at different scales play important roles in the mechanical functions of various cells, and these multiscale phenomena require clarification. To establish a milestone toward achieving multiscale modeling and simulation, this paper reviews mathematical analyses and simulation methods applied to the mechanics of the filamentous actin cytoskeleton. The actin cytoskeleton demonstrates characteristic behaviors at every temporal and spatial scale, and mathematical models and simulation methods can be applied to each level of actin cytoskeletal structure ranging from the molecular to the network level. This paper considers studies on mathematical models and simulation methods based on the molecular dynamics, coarse-graining, and continuum dynamics approaches. Every temporal and spatial scale of actin cytoskeletal structure is considered, and it is expected that discrete and continuum dynamics ranging from functional expression at the molecular level to macroscopic functional expression at the whole cell level will be developed and applied to multiscale modeling and simulation.
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页码:291 / 302
页数:11
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