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一种Swi3同源物与Sth1的相互作用为酿酒酵母中具有重要功能的Swi/Snf相关复合物提供了证据。

Interaction of a Swi3 homolog with Sth1 provides evidence for a Swi/Snf-related complex with an essential function in Saccharomyces cerevisiae.

作者信息

Treich I, Carlson M

机构信息

Department of Genetics and Development and Institute of Cancer Research, Columbia University College of Physicians and Surgeons, New York, New York 10032, USA.

出版信息

Mol Cell Biol. 1997 Apr;17(4):1768-75. doi: 10.1128/MCB.17.4.1768.

Abstract

The Saccharomyces cerevisiae Swi/Snf complex has a role in remodeling chromatin structure to facilitate transcriptional activation. The complex has 11 components, including Swi1/Adr6, Swi2/Snf2, Swi3, Snf5, Snf6, Snf11, Swp73/Snf12, and Tfg3. Mammalian homologs of these proteins have been shown to form multiple Swi/Snf-related complexes. Here we characterize an S. cerevisiae Swi3 homolog (Swh3) and present evidence that it associates in a complex with a Snf2 homolog, Sthl. We identified Swh3 as a protein that interacts with the N terminus of Snf2 in the two-hybrid system. Swh3 and Swi3 are functionally distinct, and overexpression of one does not compensate for loss of the other. Swh3 is essential for viability and does not activate transcription of reporters. The Snf2 sequence that interacts with Swh3 was mapped to a region conserved in Sth1. We show that Swh3 and Sth1 fusion proteins interact in the two-hybrid system and coimmunoprecipitate from yeast cell extracts. We also map interactions between Swh3 and Sth1 and examine the role of a leucine zipper motif in self-association of Swh3. These findings, together with previous analysis of Sth1, indicate that Swh3 and Sth1 are associated in a complex that is functionally distinct from the Swi/Snf complex and essential for viability.

摘要

酿酒酵母的Swi/Snf复合物在重塑染色质结构以促进转录激活方面发挥作用。该复合物有11个组分,包括Swi1/Adr6、Swi2/Snf2、Swi3、Snf5、Snf6、Snf11、Swp73/Snf12和Tfg3。这些蛋白质的哺乳动物同源物已被证明可形成多种与Swi/Snf相关的复合物。在此,我们对酿酒酵母Swi3同源物(Swh3)进行了表征,并提供证据表明它与Snf2同源物Sth1形成复合物。我们在双杂交系统中鉴定出Swh3是一种与Snf2的N末端相互作用的蛋白质。Swh3和Swi3在功能上不同,一个的过表达不能补偿另一个的缺失。Swh3对细胞活力至关重要,且不激活报告基因的转录。与Swh3相互作用的Snf2序列被定位到Sth1中保守的区域。我们表明Swh3和Sth1融合蛋白在双杂交系统中相互作用,并从酵母细胞提取物中共免疫沉淀。我们还绘制了Swh3和Sth1之间的相互作用图谱,并研究了亮氨酸拉链基序在Swh3自我缔合中的作用。这些发现与之前对Sth1的分析一起表明,Swh3和Sth1存在于一个复合物中,该复合物在功能上不同于Swi/Snf复合物,且对细胞活力至关重要。

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