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酵母线粒体核心RNA聚合酶Rpo41中的一个突变导致特异性因子相互作用和启动子利用方面的缺陷。

A mutation in the yeast mitochondrial core RNA polymerase, Rpo41, confers defects in both specificity factor interaction and promoter utilization.

作者信息

Matsunaga Michio, Jaehning Judith A

机构信息

Department of Biochemistry and Molecular Genetics and Program in Molecular Biology, University of Colorado Health Sciences Center, 4200 East Ninth Avenue, Denver, CO 80262, USA.

出版信息

J Biol Chem. 2004 Jan 16;279(3):2012-9. doi: 10.1074/jbc.M307819200. Epub 2003 Oct 21.

DOI:10.1074/jbc.M307819200
PMID:14570924
Abstract

The yeast mitochondrial RNA polymerase (RNAP) is composed of the core RNAP, Rpo41, and the mitochondrial transcription factor, Mtf1. Both are required for mitochondrial transcription, but how the two proteins interact to create a functional, promoter-selective holoenzyme is still unknown. Rpo41 is similar to the single polypeptide bacteriophage T7RNAP, which does not require additional factors for promoter-selective initiation but whose activity is modulated during infection by association with T7 lysozyme. In this study we used the co-crystal structure of T7RNAP and T7 lysozyme as a model to define a potential Mtf1 interaction surface on Rpo41, making site-directed mutations in Rpo41 at positions predicted to reside at the same location as the T7RNAP/T7 lysozyme interface. We identified Rpo41 mutant E1224A as having reduced interactions with Mtf1 in a two-hybrid assay and a temperature-sensitive petite phenotype in vivo. Although the E1224A mutant has full activity in a non-selective in vitro transcription assay, it is temperature-sensitive for selective transcription from linear DNA templates containing the 14S rRNA, COX2, and tRNAcys mitochondrial promoters. The tRNAcys promoter defect can be rescued by template supercoiling but not by addition of a dinucleotide primer. The fact that mutation of Rpo41 results in selective transcription defects indicates that the core RNAP, like T7RNAP, plays an important role in promoter utilization.

摘要

酵母线粒体RNA聚合酶(RNAP)由核心RNAP、Rpo41和线粒体转录因子Mtf1组成。两者都是线粒体转录所必需的,但这两种蛋白质如何相互作用以形成功能性的、具有启动子选择性的全酶仍不清楚。Rpo41类似于单多肽噬菌体T7 RNAP,后者在启动子选择性起始时不需要额外的因子,但其活性在感染期间通过与T7溶菌酶结合而受到调节。在本研究中,我们以T7 RNAP和T7溶菌酶的共晶体结构为模型,确定Rpo41上潜在的Mtf1相互作用表面,在Rpo41上预测与T7 RNAP/T7溶菌酶界面位于同一位置的位点进行定点突变。我们在双杂交试验中鉴定出Rpo41突变体E1224A与Mtf1的相互作用减少,并且在体内具有温度敏感的小菌落表型。虽然E1224A突变体在非选择性体外转录试验中具有完全活性,但对于从含有14S rRNA、COX2和tRNAcys线粒体启动子的线性DNA模板进行选择性转录,它对温度敏感。tRNAcys启动子缺陷可以通过模板超螺旋挽救,但不能通过添加二核苷酸引物挽救。Rpo41突变导致选择性转录缺陷这一事实表明,核心RNAP与T7 RNAP一样,在启动子利用中起重要作用。

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