Microtubule depolymerization induces stress fibers, focal adhesions, and DNA synthesis via the GTP-binding protein Rho.

B P Liu, M Chrzanowska-Wodnicka, K Burridge
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引用次数: 190

Abstract

Microtubule depolymerization has multiple consequences that include actin stress fiber and focal adhesion assembly, increased tyrosine phosphorylation and DNA synthesis. Similar effects induced by serum, or agents such as lysophosphatidic acid, have previously been shown to be mediated by the GTP-binding protein Rho. We have investigated whether the effects of microtubule depolymerization are similarly mediated by Rho and show that they are blocked by the specific Rho inhibitor, C3 transferase. Because microtubule depolymerization induces these effects in quiescent cells, in which Rho is largely inactive, we conclude that microtubule depolymerization leads to activation of Rho. The activation of Rho in response to microtubule depolymerization and the consequent stimulation of contractility suggest a mechanism by which microtubules may regulate microfilament function in various motile phenomena. These range from growth cone extension to the development of the contractile ring during cytokinesis, in which there are interactions between the microtubule and microfilament systems.

微管解聚通过gtp结合蛋白Rho诱导应力纤维、黏附和DNA合成。
微管解聚具有多种后果,包括肌动蛋白应力纤维和焦点粘附组装,酪氨酸磷酸化和DNA合成增加。血清或溶血磷脂酸等药物诱导的类似效果,先前已被证明是由gtp结合蛋白Rho介导的。我们已经研究了微管解聚的作用是否类似地由Rho介导,并表明它们被特定的Rho抑制剂C3转移酶阻断。由于微管解聚在静止细胞中诱导这些效应,其中Rho基本上不活跃,我们得出结论,微管解聚导致Rho的激活。微管解聚反应中Rho的激活及其对收缩性的刺激提示了微管在各种运动现象中调节微丝功能的机制。这些范围从生长锥延伸到细胞分裂期间收缩环的发展,其中微管和微丝系统之间存在相互作用。
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