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大肠杆菌RNA聚合酶两个最大亚基中的氨基酸替换可抑制有缺陷的Rho终止因子,这会影响转录复合体的不同部分。

Amino acid substitutions in the two largest subunits of Escherichia coli RNA polymerase that suppress a defective Rho termination factor affect different parts of the transcription complex.

作者信息

Heisler L M, Feng G, Jin D J, Gross C A, Landick R

机构信息

Department of Bacteriology, University of Wisconsin, Madison, Wisconsin 53706, USA.

出版信息

J Biol Chem. 1996 Jun 14;271(24):14572-83. doi: 10.1074/jbc.271.24.14572.

DOI:10.1074/jbc.271.24.14572
PMID:8662850
Abstract

Among the earliest rpoBC mutations identified are three suppressors of the conditional lethal rho allele, rho201. These three mutations are of particular interest because, unlike rpoB8, they do not increase termination at all rho-dependent and rho-independent terminators. rpoB211 and rpoB212 both change Asn-1072 to His in conserved region H of rpoB (betaN1072H), whereas rpoC214 changes Arg-352 to Cys in conserved region C of rpoC (beta'R352C). Both substitutions significantly reduce the overall rate of transcript elongation in vitro relative to wild-type RNA polymerase; however, they probably slow elongation for different reasons. The nucleotide triphosphate concentrations required at the T7 A1 promoter for both abortive trinucleotide synthesis and for promoter escape are much greater for betaN1072H. In contrast, beta'R352C and two adjacent substitutions (beta'G351S and beta'S350F), but not betaN1072H, formed open complexes of greatly reduced stability. The sequence in this region of beta' modestly resembles a region of Escherichia coli DNA polymerase I that contacts the phosphate backbone of DNA in co-crystals. Core determinants affecting open complex formation do not reside exclusively in beta', however, since the Rifr mutation rpoB2 in beta also dramatically destabilized open complexes. We suggest that the principal defects of the two Rho-suppressing substitutions may differ, perhaps reflecting a greater role of beta region H in nucleoside triphosphate-binding and nucleotide addition and of beta' region C in contacts to the DNA strands that could be important for translocation. Although both probably suppress rho201 by slowing RNA chain elongation, these differences may lead to terminator specificity that depends on the rate-limiting step at different sites.

摘要

最早鉴定出的rpoBC突变中有三个是条件致死性rho等位基因rho201的抑制子。这三个突变特别令人感兴趣,因为与rpoB8不同,它们不会增加所有rho依赖性和rho非依赖性终止子处的终止。rpoB211和rpoB212都将rpoB保守区域H中的Asn-1072变为His(βN1072H),而rpoC214将rpoC保守区域C中的Arg-352变为Cys(β'R352C)。相对于野生型RNA聚合酶,这两种替代都显著降低了体外转录延伸的总体速率;然而,它们可能由于不同的原因而减缓延伸。对于βN1072H,在T7 A1启动子处进行流产性三核苷酸合成和启动子逃逸所需的三磷酸核苷酸浓度要高得多。相比之下,β'R352C和两个相邻替代(β'G351S和β'S350F),但不是βN1072H,形成了稳定性大大降低的开放复合物。β'这个区域的序列与大肠杆菌DNA聚合酶I在共晶体中接触DNA磷酸骨架的区域有一定程度的相似。然而,影响开放复合物形成的核心决定因素并不完全存在于β'中,因为β中的利福平抗性突变rpoB2也极大地破坏了开放复合物的稳定性。我们认为,这两种抑制Rho的替代的主要缺陷可能不同,这可能反映了β区域H在核苷三磷酸结合和核苷酸添加中的作用更大,以及β'区域C在与DNA链的接触中的作用更大,而这对于转位可能很重要。尽管两者可能都通过减缓RNA链延伸来抑制rho201,但这些差异可能导致终止子特异性取决于不同位点的限速步骤。

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