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MD 模拟揭示了 Hfq-RNA 复合物动态组装的基础。

MD simulations reveal the basis for dynamic assembly of Hfq-RNA complexes.

机构信息

Institute of Biophysics of the Czech Academy of Sciences, Brno, Czech Republic.

Department of Biochemistry, University of Cambridge, Cambridge, United Kingdom; MRC-LMB, Cambridge, United Kingdom.

出版信息

J Biol Chem. 2021 Jan-Jun;296:100656. doi: 10.1016/j.jbc.2021.100656. Epub 2021 Apr 20.

Abstract

The conserved protein Hfq is a key factor in the RNA-mediated control of gene expression in most known bacteria. The transient intermediates Hfq forms with RNA support intricate and robust regulatory networks. In Pseudomonas, Hfq recognizes repeats of adenine-purine-any nucleotide (ARN) in target mRNAs via its distal binding side, and together with the catabolite repression control (Crc) protein, assembles into a translation-repression complex. Earlier experiments yielded static, ensemble-averaged structures of the complex, but details of its interface dynamics and assembly pathway remained elusive. Using explicit solvent atomistic molecular dynamics simulations, we modeled the extensive dynamics of the Hfq-RNA interface and found implications for the assembly of the complex. We predict that syn/anti flips of the adenine nucleotides in each ARN repeat contribute to a dynamic recognition mechanism between the Hfq distal side and mRNA targets. We identify a previously unknown binding pocket that can accept any nucleotide and propose that it may serve as a 'status quo' staging point, providing nonspecific binding affinity, until Crc engages the Hfq-RNA binary complex. The dynamical components of the Hfq-RNA recognition can speed up screening of the pool of the surrounding RNAs, participate in rapid accommodation of the RNA on the protein surface, and facilitate competition among different RNAs. The register of Crc in the ternary assembly could be defined by the recognition of a guanine-specific base-phosphate interaction between the first and last ARN repeats of the bound RNA. This dynamic substrate recognition provides structural rationale for the stepwise assembly of multicomponent ribonucleoprotein complexes nucleated by Hfq-RNA binding.

摘要

保守蛋白 Hfq 是大多数已知细菌中 RNA 介导的基因表达调控的关键因素。Hfq 与 RNA 形成的瞬态中间体支持复杂而稳健的调控网络。在假单胞菌中,Hfq 通过其远端结合面识别靶 mRNA 中的腺嘌呤-嘌呤-任何核苷酸 (ARN) 重复序列,并与代谢物抑制控制 (Crc) 蛋白一起组装成翻译抑制复合物。早期的实验产生了该复合物的静态、整体平均结构,但它的界面动力学和组装途径的细节仍然难以捉摸。使用显式溶剂原子分子动力学模拟,我们模拟了 Hfq-RNA 界面的广泛动力学,并找到了复合物组装的启示。我们预测,每个 ARN 重复中的腺嘌呤核苷酸的顺/反式翻转有助于 Hfq 远端和 mRNA 靶标之间的动态识别机制。我们确定了一个以前未知的结合口袋,可以接受任何核苷酸,并提出它可能作为一个“现状”的停泊点,提供非特异性结合亲和力,直到 Crc 与 Hfq-RNA 二元复合物结合。Hfq-RNA 识别的动力学成分可以加快周围 RNA 池的筛选速度,参与 RNA 在蛋白质表面的快速适应,并促进不同 RNA 之间的竞争。三元组装中 Crc 的寄存器可以通过识别结合 RNA 的第一个和最后一个 ARN 重复之间的鸟嘌呤特异性碱基-磷酸相互作用来定义。这种动态底物识别为 Hfq-RNA 结合引发的多组分核糖核蛋白复合物的逐步组装提供了结构基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0729/8121710/23da9226fc61/gr1.jpg

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