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Pil1控制内质体的生物发生。

Pil1 controls eisosome biogenesis.

作者信息

Moreira Karen E, Walther Tobias C, Aguilar Pablo S, Walter Peter

机构信息

Howard Hughes Medical Institute, and Department of Biochemistry and Biophysics, University of California at San Francisco, San Francisco, CA 94158, USA.

出版信息

Mol Biol Cell. 2009 Feb;20(3):809-18. doi: 10.1091/mbc.e08-03-0313. Epub 2008 Nov 26.

Abstract

The molecular composition of plasma membranes is constantly remodeled by endocytosis and exocytosis. Eisosomes are large cytoplasmic protein assemblies that localize to specialized domains on the yeast plasma membrane. They are of uniform size and immobile, and their disruption leads to large aberrant plasma membrane invaginations and endocytic defects. It is unknown how eisosomes are formed or inherited and what governs their size, distribution, and location. Here we show that eisosomes are formed de novo in the bud of dividing cells. They colonize newly formed membrane at a fixed density in a polarized wave proceeding from the bud neck to the bud tip and become anchored at the site of their formation. Pil1, one of the two main eisosome subunits, emerges as the central regulator of eisosome biogenesis that determines both size and location of eisosomes. Lowering Pil1 expression leads to normal-sized eisosomes at a reduced density, suggesting that eisosomes must be of a minimal size. Conversely, raising Pil1 expression leads to larger eisosomes at a fixed density, suggesting that under these conditions eisosome nucleation sites are limiting. Pil1 expression is regulated by the cell cycle, which synchronizes eisosome formation with plasma membrane growth. Our results establish a first framework of the molecular principles that define eisosome assembly and distribution.

摘要

质膜的分子组成通过内吞作用和外排作用不断重塑。胞膜窖是定位于酵母质膜特定区域的大型细胞质蛋白聚集体。它们大小均匀且固定不动,其破坏会导致大量异常的质膜内陷和内吞缺陷。目前尚不清楚胞膜窖是如何形成或遗传的,以及是什么决定了它们的大小、分布和位置。在这里,我们表明胞膜窖在分裂细胞的芽中从头形成。它们以固定密度在从芽颈到芽尖的极化波中定殖于新形成的膜上,并在其形成位点锚定。Pil1是胞膜窖的两个主要亚基之一,是胞膜窖生物发生的核心调节因子,它决定了胞膜窖的大小和位置。降低Pil1表达会导致密度降低但大小正常的胞膜窖,这表明胞膜窖必须具有最小尺寸。相反,提高Pil1表达会导致密度固定但更大的胞膜窖,这表明在这些条件下胞膜窖成核位点是有限的。Pil1表达受细胞周期调控,从而使胞膜窖形成与质膜生长同步。我们的结果建立了定义胞膜窖组装和分布的分子原理的首个框架。

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