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细菌转录延伸因子与转录终止子拮抗物形成复合物所需的相互作用表面。

The interaction surface of a bacterial transcription elongation factor required for complex formation with an antiterminator during transcription antitermination.

机构信息

From the Laboratory of Transcription, Centre for DNA Fingerprinting and Diagnostics, Tuljaguda Complex, 4-1-714 Mozamjahi Road, Nampally, Hyderabad-500001, India.

出版信息

J Biol Chem. 2013 Sep 27;288(39):28089-103. doi: 10.1074/jbc.M113.472209. Epub 2013 Aug 2.

Abstract

The bacterial transcription elongation factor, NusA, functions as an antiterminator when it is bound to the lambdoid phage derived antiterminator protein, N. The mode of N-NusA interaction is unknown, knowledge of which is essential to understand the antitermination process. It was reported earlier that in the absence of the transcription elongation complex (EC), N interacts with the C-terminal AR1 domain of NusA. However, the functional significance of this interaction is obscure. Here we identified mutations in NusA N terminus (NTD) specifically defective for N-mediated antitermination. These are located at a convex surface of the NusA-NTD, situated opposite its concave RNA polymerase (RNAP) binding surface. These NusA mutants disrupt the N-nut site interactions on the nascent RNA emerging out of a stalled EC. In the N/NusA-modified EC, a Cys-53 (S53C) from the convex surface of the NusA-NTD forms a specific disulfide (S-S) bridge with a Cys-39 (S39C) of the NusA binding region of the N protein. We conclude that when bound to the EC, the N interaction surface of NusA shifts from the AR1 domain to its NTD domain. This occurred due to a massive away-movement of the adjacent AR2 domain of NusA upon binding to the EC. We propose that the close proximity of this altered N-interaction site of NusA to its RNAP binding surface, enables N to influence the NusA-RNAP interaction during transcription antitermination that in turn facilitates the conversion of NusA into an antiterminator.

摘要

细菌转录延伸因子 NusA 与来源于 λ 噬菌体的抗终止蛋白 N 结合时充当抗终止子。N-NusA 相互作用的模式尚不清楚,了解这一点对于理解抗终止过程至关重要。早些时候有报道称,在没有转录延伸复合物(EC)的情况下,N 与 NusA 的 C 末端 AR1 结构域相互作用。然而,这种相互作用的功能意义尚不清楚。在这里,我们鉴定了 NusA N 端(NTD)中的突变,这些突变特异性地对 N 介导的抗终止作用有缺陷。这些突变位于 NusA-NTD 的凸表面上,位于其凹面 RNA 聚合酶(RNAP)结合表面的对面。这些 NusA 突变破坏了从停滞的 EC 中出现的新生 RNA 上的 N- nut 位点相互作用。在 N/NusA 修饰的 EC 中,NusA-NTD 凸表面上的 Cys-53(S53C)与 N 蛋白的 NusA 结合区域的 Cys-39(S39C)形成特定的二硫键(S-S)桥。我们得出结论,当与 EC 结合时,NusA 的 N 相互作用表面从 AR1 结构域转移到其 NTD 结构域。这是由于 NusA 的相邻 AR2 结构域在与 EC 结合时发生了大规模的向外移动。我们提出,这种改变的 NusA 的 N 相互作用位点与它的 RNAP 结合表面的接近,使 N 在转录抗终止过程中能够影响 NusA-RNAP 相互作用,从而促进 NusA 转化为抗终止子。

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