首页> 美国卫生研究院文献>Genetics >Sro9 a Multicopy Suppressor of the Bud Growth Defect in the Saccharomyces Cerevisiae Rho3-Deficient Cells Shows Strong Genetic Interactions with Tropomyosin Genes Suggesting Its Role in Organization of the Actin Cytoskeleton
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Sro9 a Multicopy Suppressor of the Bud Growth Defect in the Saccharomyces Cerevisiae Rho3-Deficient Cells Shows Strong Genetic Interactions with Tropomyosin Genes Suggesting Its Role in Organization of the Actin Cytoskeleton

机译:Sro9啤酒酵母Rho3缺陷细胞中芽生长缺陷的多拷贝抑制剂显示与肌球蛋白基因的强大遗传相互作用表明其在肌动蛋白细胞骨架组织中的作用。

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摘要

RHO3 encodes a Rho-type small GTPase in the yeast Saccharomyces cerevisiae and is involved in the proper organization of the actin cytoskeleton required for bud growth. SRO9 (YCL37c) was isolated as a multicopy suppressor of a rho3δ mutation. An Sro9p domain required for function is similar to a domain in the La protein (an RNA-binding protein). Disruption of SRO9 did not affect vegetative growth, even with the simultaneous disruption of an SRO9 homologue, SRO99. However, sro9δ was synthetically lethal with a disruption of TPM1, which encodes tropomyosin; sro9δ tpm1δ cells did not distribute cortical actin patches properly and lysed. We isolated TPM2, the other gene for tropomyosin, as a multicopy suppressor of a tpm1δ sro9δ double mutant. Genetic analysis suggests that TPM2 is functionally related to TPM1 and that tropomyosin is important but not essential for cell growth. Overexpression of SRO9 suppressed the growth defect in tpm1δ tpm2δ cells, disappearance of cables of actin filaments in both rho3δ cells and tpm1δ cells, and temperature sensitivity of actin mutant cells (act1-1 cells), suggesting that Sro9p has a function that overlaps or is related to tropomyosin function. Unlike tropomyosin, Sro9p does not colocalize with actin cables but is diffusely cytoplasmic. These results suggest that Sro9p is a new cytoplasmic factor involved in the organization of actin filaments.
机译:RHO3在酿酒酵母中编码Rho型小GTP酶,并参与芽生长所需的肌动蛋白细胞骨架的正确组织。 SRO9(YCL37c)被分离为rho3δ突变的多拷贝抑制剂。功能所需的Sro9p结构域类似于La蛋白(一种RNA结合蛋白)中的结构域。即使同时破坏了SRO9同源物SRO99,SRO9的破坏也不会影响营养生长。但是,sro9δ具有合成致死性,并破坏了编码原肌球蛋白的TPM1。 sro9δtpm1δ细胞未正确分布和溶解皮质肌动蛋白补丁。我们分离了TPM2,原肌球蛋白的另一个基因,作为tpm1δsro9δ双突变体的多拷贝抑制剂。遗传分析表明,TPM2在功能上与TPM1相关,并且原肌球蛋白对细胞生长很重要,但不是必需的。 SRO9的过表达抑制了tpm1δtpm2δ细胞中的生长缺陷,rho3δ细胞和tpm1δ细胞中肌动蛋白丝的电缆消失以及肌动蛋白突变细胞(act1-1细胞)的温度敏感性,表明Sro9p具有重叠或重叠的功能。与原肌球蛋白功能有关。与原肌球蛋白不同,Sro9p不会与肌动蛋白电缆共定位,但具有弥散的细胞质。这些结果表明Sro9p是肌动蛋白丝组织中涉及的一个新的细胞质因子。

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