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The beta hairpin structure within ribosomal protein S5 mediates interplay between domains II and IV and regulates HCV IRES function

机译:核糖体蛋白S5中的β发夹结构介导结构域II和IV之间的相互作用,并调节HCV IRES功能

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摘要

Translation initiation in Hepatitis C Virus (HCV) is mediated by Internal Ribosome Entry Site (IRES), which is independent of cap-structure and uses a limited number of canonical initiation factors. During translation initiation IRES-40S complex formation depends on high affinity interaction of IRES with ribosomal proteins. Earlier, it has been shown that ribosomal protein S5 (RPS5) interacts with HCV IRES. Here, we have extensively characterized the HCV IRES-RPS5 interaction and demonstrated its role in IRES function. Computational modelling and RNA-protein interaction studies demonstrated that the beta hairpin structure within RPS5 is critically required for the binding with domains II and IV. Mutations disrupting IRES-RPS5 interaction drastically reduced the 80S complex formation and the corresponding IRES activity. Computational analysis and UV cross-linking experiments using various IRES-mutants revealed interplay between domains II and IV mediated by RPS5. In addition, present study demonstrated that RPS5 interaction is unique to HCV IRES and is not involved in 40S-3 ' UTR interaction. Further, partial silencing of RPS5 resulted in preferential inhibition of HCV RNA translation. However, global translation was marginally affected by partial silencing of RPS5. Taken together, results provide novel molecular insights into IRES-RPS5 interaction and unravel its functional significance in mediating internal initiation of translation.
机译:丙型肝炎病毒(HCV)的翻译起始是由内部核糖体进入位点(IRES)介导的,该位点与帽结构无关,并且使用了数量有限的规范起始因子。在翻译起始过程中,IRES-40S复合物的形成取决于IRES与核糖体蛋白的高亲和力相互作用。较早的研究表明,核糖体蛋白S5(RPS5)与HCV IRES相互作用。在这里,我们已广泛表征HCV IRES-RPS5相互作用,并证明了其在IRES功能中的作用。计算模型和RNA-蛋白质相互作用研究表明,RPS5中的β发夹结构是与结构域II和IV结合的关键条件。破坏IRES-RPS5相互作用的突变极大地减少了80S复合物的形成和相应的IRES活性。使用各种IRES突变体的计算分析和UV交联实验揭示了RPS5介导的结构域II和IV之间的相互作用。此外,本研究表明RPS5相互作用是HCV IRES独有的,并且不参与40S-3'UTR相互作用。此外,RPS5的部分沉默导致HCV RNA翻译的优先抑制。但是,整体翻译受到RPS5的部分沉默的影响。综上所述,结果为IRES-RPS5相互作用提供了新颖的分子见解,并揭示了其在介导翻译内部启动中的功能意义。

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