Primary cilia have a length-dependent persistence length

被引:0
|
作者
Justin Flaherty
Zhe Feng
Zhangli Peng
Y.-N. Young
Andrew Resnick
机构
[1] The Ohio State University,Department of Physics
[2] University of Notre Dame,Department of Aerospace and Mechanical Engineering
[3] New Jersey Institute of Technology,Department of Mathematical Sciences
[4] Cleveland State University,Department of Physics, Center for Gene Regulation in Health and Disease
[5] University of Illinois at Chicago,Department of Bioengineering
来源
Biomechanics and Modeling in Mechanobiology | 2020年 / 19卷
关键词
Primary cilia; Elastic shell; Mechanobiology;
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中图分类号
学科分类号
摘要
The fluctuating position of an optically trapped cilium tip under untreated and Taxol-treated conditions was used to characterize mechanical properties of the cilium axoneme and its basal body by combining experimental, analytical, and computational tools. We provide, for the first time, evidence that the persistence length of a ciliary axoneme is length-dependent; longer cilia are stiffer than shorter cilia. We demonstrate that this apparent length dependence can be understood by a combination of modeling axonemal microtubules as anisotropic elastic shells and including actomyosin-driven stochastic basal body motion. Our results also demonstrate the possibility of using observable ciliary dynamics to probe interior cytoskeletal dynamics. It is hoped that our improved characterization of cilia will result in deeper understanding of the biological function of cellular flow sensing by this organelle.
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页码:445 / 460
页数:15
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