离子强度会改变交联剂驱动的微管自组织。

IF 2.4 4区 生物学 Q4 CELL BIOLOGY Cytoskeleton Pub Date : 2024-02-22 DOI:10.1002/cm.21839
Prashali Chauhan, Hong Beom Lee, Niaz Goodbee, Sophia Martin, Ruell Branch, Sumon Sahu, Jennifer M. Schwarz, Jennifer L. Ross
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引用次数: 0

摘要

微管细胞骨架是细胞内的主要结构元素,它利用微管相关蛋白和马达指导细胞的自组织。研究表明,在体外,由微管蛋白和 MAP65/PRC1/Ase 家族的反平行交联剂 MAP65 组成的混合物可自发形成有限大小的纺锤形微管组织,称为 "tactoids"。在这里,我们探究了 MAP65 形成触角的能力与缓冲液离子强度的关系,试图打破 MAP65 与微管的静电相互作用以及 MAP65 之间的结合。我们观察到,随着单价盐的增加,组织从有限的触球变为无界的长度束,但 MAP65 的结合和交联似乎保持不变。我们利用微管造粒和单分子结合试验进一步探讨了离子强度对 MAP65 解离常数的影响。我们发现,盐可以降低结合力,但盐从来没有否定结合力。相反,我们认为盐会影响 MAP65 形成相分离液滴的能力,从而导致触球的成核和生长,正如最近所证明的那样。
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Ionic strength alters crosslinker-driven self-organization of microtubules

The microtubule cytoskeleton is a major structural element inside cells that directs self-organization using microtubule-associated proteins and motors. It has been shown that finite-sized, spindle-like microtubule organizations, called “tactoids,” can form in vitro spontaneously from mixtures of tubulin and the antiparallel crosslinker, MAP65, from the MAP65/PRC1/Ase family. Here, we probe the ability of MAP65 to form tactoids as a function of the ionic strength of the buffer to attempt to break the electrostatic interactions binding MAP65 to microtubules and inter-MAP65 binding. We observe that, with increasing monovalent salts, the organizations change from finite tactoids to unbounded length bundles, yet the MAP65 binding and crosslinking appear to stay intact. We further explore the effects of ionic strength on the dissociation constant of MAP65 using both microtubule pelleting and single-molecule binding assays. We find that salt can reduce the binding, yet salt never negates it. Instead, we believe that the salt is affecting the ability of the MAP65 to form phase-separated droplets, which cause the nucleation and growth of tactoids, as recently demonstrated.

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来源期刊
Cytoskeleton
Cytoskeleton CELL BIOLOGY-
CiteScore
5.50
自引率
3.40%
发文量
24
审稿时长
6-12 weeks
期刊介绍: Cytoskeleton focuses on all aspects of cytoskeletal research in healthy and diseased states, spanning genetic and cell biological observations, biochemical, biophysical and structural studies, mathematical modeling and theory. This includes, but is certainly not limited to, classic polymer systems of eukaryotic cells and their structural sites of attachment on membranes and organelles, as well as the bacterial cytoskeleton, the nucleoskeleton, and uncoventional polymer systems with structural/organizational roles. Cytoskeleton is published in 12 issues annually, and special issues will be dedicated to especially-active or newly-emerging areas of cytoskeletal research.
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