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DOI10.1073/pnas.2002446117
Active forces shape the metaphase spindle through a mechanical instability
Oriola D.; Jülicher F.; Brugués J.
发表日期2020
ISSN0027-8424
起始页码16154
结束页码16159
卷号117期号:28
英文摘要The metaphase spindle is a dynamic structure orchestrating chromosome segregation during cell division. Recently, soft matter approaches have shown that the spindle behaves as an active liquid crystal. Still, it remains unclear how active force generation contributes to its characteristic spindle-like shape. Here we combine theory and experiments to show that molecular motor-driven forces shape the structure through a barreling-type instability. We test our physical model by titrating dynein activity in Xenopus egg extract spindles and quantifying the shape and microtubule orientation. We conclude that spindles are shaped by the interplay between surface tension, nematic elasticity, and motor-driven active forces. Our study reveals how motor proteins can mold liquid crystalline droplets and has implications for the design of active soft materials. © 2020 National Academy of Sciences. All rights reserved.
英文关键词Active matter; Dynein; Liquid crystals; Mitotic spindle; Xenopus laevis
语种英语
scopus关键词dynein adenosine triphosphatase; molecular motor; dynein adenosine triphosphatase; Xenopus protein; Article; controlled study; crystallization; elasticity; enzyme activity; genomic instability; metaphase; microtubule; molecular dynamics; nonhuman; priority journal; quantum theory; spindle cell; surface tension; titrimetry; Xenopus; animal; biomechanics; chemistry; drug effect; liquid crystal; metabolism; metaphase; mitosis; physiology; spindle apparatus; Xenopus laevis; Animals; Biomechanical Phenomena; Dyneins; Elasticity; Liquid Crystals; Metaphase; Microtubules; Mitosis; Spindle Apparatus; Surface Tension; Xenopus laevis; Xenopus Proteins
来源期刊Proceedings of the National Academy of Sciences of the United States of America
文献类型期刊论文
条目标识符http://gcip.llas.ac.cn/handle/2XKMVOVA/160262
作者单位Oriola, D., Max Planck Institute of Molecular Cell Biology and Genetics, Dresden, 01307, Germany, Center for Systems Biology Dresden, Dresden, 01307, Germany, Max Planck Institute for the Physics of Complex Systems, Dresden, 01187, Germany, Cluster of Excellence Physics of Life, TU Dresden, Dresden, 01307, Germany; Jülicher, F., Center for Systems Biology Dresden, Dresden, 01307, Germany, Max Planck Institute for the Physics of Complex Systems, Dresden, 01187, Germany, Cluster of Excellence Physics of Life, TU Dresden, Dresden, 01307, Germany; Brugués, J., Max Planck Institute of Molecular Cell Biology and Genetics, Dresden, 01307, Germany, Center for Systems Biology Dresden, Dresden, 01307, Germany, Max Planck Institute for the Physics of Complex Systems, Dresden, 01187, Germany, Cluster of Excellence Physics of Life, TU Dresden, Dresden, 01307, Germany
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Oriola D.,Jülicher F.,Brugués J.. Active forces shape the metaphase spindle through a mechanical instability[J],2020,117(28).
APA Oriola D.,Jülicher F.,&Brugués J..(2020).Active forces shape the metaphase spindle through a mechanical instability.Proceedings of the National Academy of Sciences of the United States of America,117(28).
MLA Oriola D.,et al."Active forces shape the metaphase spindle through a mechanical instability".Proceedings of the National Academy of Sciences of the United States of America 117.28(2020).
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