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酿酒酵母隔膜蛋白:异源寡聚体的超分子组织及丝状组装机制

Saccharomyces cerevisiae septins: supramolecular organization of heterooligomers and the mechanism of filament assembly.

作者信息

Bertin Aurelie, McMurray Michael A, Grob Patricia, Park Sang-Shin, Garcia Galo, Patanwala Insiyyah, Ng Ho-Leung, Alber Tom, Thorner Jeremy, Nogales Eva

机构信息

Department of Molecular and Cell Biology, University of California, Berkeley, CA 94720, USA.

出版信息

Proc Natl Acad Sci U S A. 2008 Jun 17;105(24):8274-9. doi: 10.1073/pnas.0803330105. Epub 2008 Jun 12.

Abstract

Mitotic yeast cells express five septins (Cdc3, Cdc10, Cdc11, Cdc12, and Shs1/Sep7). Only Shs1 is nonessential. The four essential septins form a complex containing two copies of each, but their arrangement was not known. Single-particle analysis by EM confirmed that the heterooligomer is octameric and revealed that the subunits are arrayed in a linear rod. Identity of each subunit was determined by examining complexes lacking a given septin, by antibody decoration, and by fusion to marker proteins (GFP or maltose binding protein). The rod has the order Cdc11-Cdc12-Cdc3-Cdc10-Cdc10-Cdc3-Cdc12-Cdc11 and, hence, lacks polarity. At low ionic strength, rods assemble end-to-end to form filaments but not when Cdc11 is absent or its N terminus is altered. Filaments invariably pair into long parallel "railroad tracks." Lateral association seems to be mediated by heterotetrameric coiled coils between the paired C-terminal extensions of Cdc3 and Cdc12 projecting orthogonally from each filament. Shs1 may be able to replace Cdc11 at the end of the rod. Our findings provide insights into the molecular mechanisms underlying the function and regulation of cellular septin structures.

摘要

有丝分裂酵母细胞表达五种septin蛋白(Cdc3、Cdc10、Cdc11、Cdc12和Shs1/Sep7)。只有Shs1是非必需的。四种必需的septin蛋白形成一个复合物,每种蛋白各有两个拷贝,但它们的排列方式尚不清楚。通过电子显微镜进行的单颗粒分析证实,该异源寡聚体是八聚体,并揭示亚基呈线性排列。通过检查缺少特定septin蛋白的复合物、抗体标记以及与标记蛋白(绿色荧光蛋白或麦芽糖结合蛋白)融合,确定了每个亚基的身份。该杆状结构的顺序为Cdc11-Cdc12-Cdc3-Cdc10-Cdc10-Cdc3-Cdc12-Cdc11,因此没有极性。在低离子强度下,杆状结构会首尾相连组装成细丝,但当Cdc11缺失或其N端发生改变时则不会。细丝总是成对形成长的平行“铁轨”。侧向结合似乎是由从每条细丝正交伸出的Cdc3和Cdc12的配对C端延伸之间的异源四聚体卷曲螺旋介导的。Shs1可能能够在杆状结构的末端取代Cdc11。我们的研究结果为细胞septin结构的功能和调控背后的分子机制提供了见解。

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