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Regulation of Microtubule Dynamics by Extracellular Signals: cAMP-dependent Protein Kinase Switches Off the Activity of Oncoprotein 18 in Intact Cells

机译:通过细胞外信号调节微管动力学:cAMP依赖性蛋白激酶关闭完整细胞中癌蛋白18的活性。

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摘要

Oncoprotein 18 (Op18, also termed p19, 19K, metablastin, stathmin, and prosolin) is a recently identified regulator of microtubule (MT) dynamics. Op18 is a target for both cell cycle and cell surface receptor-coupled kinase systems, and phosphorylation of Op18 on specific combinations of sites has been shown to switch off its MT-destabilizing activity. Here we show that induced expression of the catalytic subunit of cAMP-dependent protein kinase (PKA) results in a dramatic increase in cellular MT polymer content concomitant with phosphorylation and partial degradation of Op18. That PKA may regulate the MT system by downregulation of Op18 activity was evaluated by a genetic system allowing conditional co-expression of PKA and a series of kinase target site–deficient mutants of Op18. The results show that phosphorylation of Op18 on two specific sites, Ser-16 and Ser-63, is necessary and sufficient for PKA to switch off Op18 activity in intact cells. The regulatory importance of dual phosphorylation on Ser-16 and Ser-63 of Op18 was reproduced by in vitro assays. These results suggest a simple model where PKA phosphorylation downregulates the MT-destabilizing activity of Op18, which in turn promotes increased tubulin polymerization. Hence, the present study shows that Op18 has the potential to regulate the MT system in response to external signals such as cAMP-linked agonists.
机译:癌蛋白18(Op18,也称为p19、19K,成胚素,stathmin和prosolin)是最近发现的微管(MT)动力学调节剂。 Op18是细胞周期和细胞表面受体偶联激酶系统的靶标,并且已证明Op18在特定位点组合上的磷酸化会关闭其MT不稳定活性。在这里,我们表明诱导表达的cAMP依赖性蛋白激酶(PKA)催化亚基导致细胞MT聚合物含量的急剧增加,同时伴随Op18的磷酸化和部分降解。遗传系统评估了PKA可能通过下调Op18活性来调节MT系统,从而允许有条件地共表达PKA和一系列激酶靶点缺失的Op18突变体。结果表明,Op18在两个特定位点Ser-16和Ser-63上的磷酸化是必需的,并且足以使PKA关闭完整细胞中的Op18活性。通过体外测定再现了Op18的Ser-16和Ser-63的双重磷酸化的调控重要性。这些结果表明了一个简单的模型,其中PKA磷酸化下调了Op18的MT失活活性,进而促进了微管蛋白聚合反应的增加。因此,本研究表明,Op18具有响应外部信号(如cAMP连接的激动剂)调节MT系统的潜力。

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