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首页> 外文期刊>Acta crystallographica, Section D. Biological crystallography >Structures of the Middle East respiratory syndrome coronavirus 3C-like protease reveal insights into substrate specificity
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Structures of the Middle East respiratory syndrome coronavirus 3C-like protease reveal insights into substrate specificity

机译:中东呼吸综合征冠状病毒3C样蛋白酶的结构揭示了底物特异性的见解

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摘要

Middle East respiratory syndrome coronavirus (MERS-CoV) is a highly pathogenic virus that causes severe respiratory illness accompanied by multi-organ dysfunction, resulting in a case fatality rate of approximately 40%. As found in other coronaviruses, the majority of the positive-stranded RNA MERS-CoV genome is translated into two polyproteins, one created by a ribosomal frameshift, that are cleaved at three sites by a papain-like protease and at 11 sites by a 3C-like protease (3CL(pro)). Since 3CL(pro) is essential for viral replication, it is a leading candidate for therapeutic intervention. To accelerate the development of 3CL(pro) inhibitors, three crystal structures of a catalytically inactive variant (C148A) of the MERS-CoV 3CL(pro) enzyme were determined. The aim was to co-crystallize the inactive enzyme with a peptide substrate. Fortuitously, however, in two of the structures the C-terminus of one protomer is bound in the active site of a neighboring molecule, providing a snapshot of an enzyme-product complex. In the third structure, two of the three protomers in the asymmetric unit form a homodimer similar to that of SARS-CoV 3CL(pro); however, the third protomer adopts a radically different conformation that is likely to correspond to a crystallographic monomer, indicative of substantial structural plasticity in the enzyme. The results presented here provide a foundation for the structure-based design of small-molecule inhibitors of the MERS-CoV 3CL(pro) enzyme.
机译:中东呼吸综合征冠状病毒(MERS-CoV)是一种高致病性病毒,可导致严重的呼吸道疾病并伴有多器官功能障碍,病死率约为40%。正如在其他冠状病毒中发现的那样,大多数正链RNA MERS-CoV基因组被翻译成两种多聚蛋白,一种是由核糖体移码产生的,它们被木瓜蛋白酶样蛋白酶在三个位点切割,并被3C切割在11个位点。样蛋白酶(3CL(pro))。由于3CL(pro)对于病毒复制至关重要,因此它是治疗干预的主要候选对象。为了加快3CL(pro)抑制剂的开发,确定了MERS-CoV 3CL(pro)酶的催化失活变体(C148A)的三个晶体结构。目的是使失活的酶与肽底物共结晶。然而,偶然地,在两个结构的两个结构中,一个启动子的C末端结合在相邻分子的活性位点中,提供了酶-产物复合物的快照。在第三结构中,不对称单元中的三个启动子中的两个形成与SARS-CoV 3CL(pro)相似的同型二聚体。但是,第三个启动子采用的自由基构象与晶体单体完全不同,表明该酶具有相当大的结构可塑性。此处提供的结果为基于结构的MERS-CoV 3CL(pro)酶小分子抑制剂设计奠定了基础。

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