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通过 Par1b/MARK2 对微管上 GEF-H1 定位的动态调节。

Dynamic regulation of GEF-H1 localization at microtubules by Par1b/MARK2.

机构信息

Laboratory of Intracellular Signaling, Institute for Protein Research, Osaka University, 3-2 Yamadaoka, Suita, Osaka 565-0871, Japan.

出版信息

Biochem Biophys Res Commun. 2011 May 6;408(2):322-8. doi: 10.1016/j.bbrc.2011.04.032. Epub 2011 Apr 12.

Abstract

Par1b/MARK2 is a serine/threonine kinase that plays key roles in the development of cell polarity, but its precise mechanism of action remains unknown. Here we report that GEF-H1, a guanine nucleotide exchange factor for Rho-family small GTPases, is a novel substrate for Par1b. GEF-H1 directly associates with microtubules via its N-terminal C1 domain, which is known to regulate the activity of GEF-H1. Ectopically expressed GEF-H1 markedly promotes stabilization of microtubules, resulting in acetylation of microtubules. We find that Par1b phosphorylates GEF-H1 at three serine residues conserved in vertebrates and releases GEF-H1 from microtubules, which abrogates stabilization and acetylation of microtubules induced by GEF-H1 overexpression. The alanine mutant for the three phosphorylation sites (3SA) of GEF-H1 strongly induces stabilization and acetylation of microtubules, which was resistant to Par1b. Time-lapse imaging analyses reveal that GFP-fused GEF-H1 dynamically moved on microtubules from one protrusion to another, whereas the 3SA mutant was static. These data suggest that Par1b-phosphorylation regulates turnover of GEF-H1 localization by regulating its interaction with microtubules, which may contribute to cell polarization.

摘要

Par1b/MARK2 是一种丝氨酸/苏氨酸激酶,在细胞极性的发育中发挥关键作用,但它的确切作用机制尚不清楚。在这里,我们报告 GEF-H1,一种 Rho 家族小 GTP 酶的鸟嘌呤核苷酸交换因子,是 Par1b 的一个新底物。GEF-H1 通过其 N 端 C1 结构域直接与微管结合,该结构域已知可调节 GEF-H1 的活性。过表达的 GEF-H1 明显促进微管的稳定,导致微管的乙酰化。我们发现 Par1b 在脊椎动物中保守的三个丝氨酸残基上磷酸化 GEF-H1,并将 GEF-H1 从微管上释放出来,这削弱了 GEF-H1 过表达诱导的微管稳定和乙酰化。GEF-H1 的三个磷酸化位点(3SA)的丙氨酸突变强烈诱导微管的稳定和乙酰化,这对 Par1b 具有抗性。延时成像分析显示 GFP 融合的 GEF-H1 在微管上从一个突起到另一个突起上动态移动,而 3SA 突变体是静态的。这些数据表明,Par1b 磷酸化通过调节其与微管的相互作用来调节 GEF-H1 定位的周转率,这可能有助于细胞极化。

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