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Force Exertion and Transmission in Cross-Linked Actin Networks

机译:交叉链接肌动蛋白网络中的力施加和传递

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摘要

Cells are responsive to external cues in their environment telling them to proliferate or migrate within their surrounding tissue. Sensing of cues that are mechanical in nature, such stiffness of a tissue or forces transmitted from other cells, is believed to involve the cytoskeleton of a cell. The cytoskeleton is a complex network of proteins consisting of polymers that provide structural support, motor proteins that remodel these structures, and many others. We do not yet have a complete understanding of how cytoskeletal components respond to either internal or external mechanical force and stiffness. Such an understanding should involve mechanisms by which constituent molecules, such as motor proteins, are responsive to mechanics. Additionally, physical models of how forces are transmitted through biopolymer networks are necessary.;My research has focused on networks formed by the cytoskeletal filament actin and the molecular motor protein myosin II. Actin filaments form networks and bundles that form a structural framework of the cell, and myosin II slides actin filaments. In this thesis, we show that stiffness of an elastic load that opposes myosin-generated actin sliding has a very sharp effect on the myosin force output in simulations. Secondly, we show that the stiffness and connectivity of cytoskeletal filaments regulates the contractility and anisotropy of network deformations that transmit force on material length scales. Together, these results have implications for predicting and interpreting the deformations and forces in biopolymeric active materials.
机译:细胞对环境中的外部线索有反应,告诉它们在周围组织中增殖或迁移。人们认为,本质上是机械提示的感觉,例如组织的刚度或从其他细胞传递来的力,涉及到细胞的细胞骨架。细胞骨架是一个复杂的蛋白质网络,包括提供结构支持的聚合物,重塑这些结构的运动蛋白等。我们还没有完全了解细胞骨架成分如何响应内部或外部机械力和刚度。这种理解应涉及诸如运动蛋白之类的组成分子对机械反应的机制。此外,还需要有关如何通过生物聚合物网络传递力的物理模型。我的研究集中在由细胞骨架丝肌动蛋白和分子运动蛋白肌球蛋白II形成的网络上。肌动蛋白丝形成网络和束,形成细胞的结构框架,肌球蛋白II使肌动蛋白丝滑动。在本文中,我们表明,与肌球蛋白生成的肌动蛋白滑动相反的弹性载荷的刚度对模拟中的肌球蛋白力输出具有非常明显的影响。其次,我们表明细胞骨架细丝的刚度和连通性调节了在材料长度尺度上传递力的网络变形的收缩性和各向异性。总之,这些结果对于预测和解释生物聚合活性材料中的变形和作用力具有重要意义。

著录项

  • 作者

    Stam, Samantha.;

  • 作者单位

    The University of Chicago.;

  • 授予单位 The University of Chicago.;
  • 学科 Biophysics.;Biochemistry.;Materials science.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 93 p.
  • 总页数 93
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 宗教;
  • 关键词

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