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酿酒酵母中依赖于Septin的细胞周期调节模块组装

Septin-dependent assembly of a cell cycle-regulatory module in Saccharomyces cerevisiae.

作者信息

Longtine M S, Theesfeld C L, McMillan J N, Weaver E, Pringle J R, Lew D J

机构信息

Department of Biology and Program in Molecular Biology and Biotechnology, University of North Carolina, Chapel Hill, North Carolina 27599-3280, USA.

出版信息

Mol Cell Biol. 2000 Jun;20(11):4049-61. doi: 10.1128/MCB.20.11.4049-4061.2000.

Abstract

Saccharomyces cerevisiae septin mutants have pleiotropic defects, which include the formation of abnormally elongated buds. This bud morphology results at least in part from a cell cycle delay imposed by the Cdc28p-inhibitory kinase Swe1p. Mutations in three other genes (GIN4, encoding a kinase related to the Schizosaccharomyces pombe mitotic inducer Nim1p; CLA4, encoding a p21-activated kinase; and NAP1, encoding a Clb2p-interacting protein) also produce perturbations of septin organization associated with an Swe1p-dependent cell cycle delay. The effects of gin4, cla4, and nap1 mutations are additive, indicating that these proteins promote normal septin organization through pathways that are at least partially independent. In contrast, mutations affecting the other two Nim1p-related kinases in S. cerevisiae, Hsl1p and Kcc4p, produce no detectable effect on septin organization. However, deletion of HSL1, but not of KCC4, did produce a cell cycle delay under some conditions; this delay appears to reflect a direct role of Hsl1p in the regulation of Swe1p. As shown previously, Swe1p plays a central role in the morphogenesis checkpoint that delays the cell cycle in response to defects in bud formation. Swe1p is localized to the nucleus and to the daughter side of the mother bud neck prior to its degradation in G(2)/M phase. Both the neck localization of Swe1p and its degradation require Hsl1p and its binding partner Hsl7p, both of which colocalize with Swe1p at the daughter side of the neck. This localization is lost in mutants with perturbed septin organization, suggesting that the release of Hsl1p and Hsl7p from the neck may reduce their ability to inactivate Swe1p and thus contribute to the G(2) delay observed in such mutants. In contrast, treatments that perturb actin organization have little effect on Hsl1p and Hsl7p localization, suggesting that such treatments must stabilize Swe1p by another mechanism. The apparent dependence of Swe1p degradation on localization of the Hsl1p-Hsl7p-Swe1p module to a site that exists only in budded cells may constitute a mechanism for deactivating the morphogenesis checkpoint when it is no longer needed (i.e., after a bud has formed).

摘要

酿酒酵母的隔膜蛋白突变体具有多效性缺陷,其中包括形成异常细长的芽。这种芽形态至少部分是由Cdc28p抑制激酶Swe1p导致的细胞周期延迟引起的。另外三个基因(GIN4,编码一种与粟酒裂殖酵母有丝分裂诱导因子Nim1p相关的激酶;CLA4,编码一种p21激活激酶;以及NAP1,编码一种与Clb2p相互作用的蛋白)的突变也会产生与Swe1p依赖性细胞周期延迟相关的隔膜蛋白组织紊乱。gin4、cla4和nap1突变的影响是累加的,这表明这些蛋白通过至少部分独立的途径促进正常的隔膜蛋白组织。相比之下,影响酿酒酵母中另外两个与Nim1p相关的激酶Hsl1p和Kcc4p的突变对隔膜蛋白组织没有可检测到的影响。然而,在某些条件下,删除HSL1而不是KCC4确实会导致细胞周期延迟;这种延迟似乎反映了Hsl1p在Swe1p调节中的直接作用。如前所示,Swe1p在形态发生检查点中起核心作用,该检查点会响应芽形成缺陷而延迟细胞周期。在G(2)/M期降解之前,Swe1p定位于细胞核和母芽颈的子侧。Swe1p的颈部定位及其降解都需要Hsl1p及其结合伴侣Hsl7p,它们都与Swe1p在颈部的子侧共定位。在隔膜蛋白组织紊乱的突变体中这种定位会丢失,这表明Hsl1p和Hsl7p从颈部释放可能会降低它们使Swe1p失活的能力,从而导致在此类突变体中观察到的G(2)延迟。相比之下,扰乱肌动蛋白组织的处理对Hsl1p和Hsl7p的定位影响很小,这表明此类处理一定是通过另一种机制稳定Swe1p。Swe1p降解明显依赖于Hsl1p - Hsl7p - Swe1p模块定位于仅在出芽细胞中存在的位点,这可能构成一种在不再需要时(即芽形成后)使形态发生检查点失活的机制。

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