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Molecular model of SARS coronavirus polymerase: implications for biochemical functions and drug design

机译:SARS冠状病毒聚合酶的分子模型:对生化功能和药物设计的影响

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The causative agent of severe acute respiratory syndrome (SARS) is a previously unidentified coronavirus, SARS-CoV. The RNA-dependent RNA polymerase (RdRp) of SARS-CoV plays a pivotal role in viral replication and is a potential target for anti-SARS therapy. There is a lack of structural or biochemical data on any coronavirus polymerase. To provide insights into the structure and function of SARS-CoV RdRp, we have located its conserved motifs that are shared by all RdRps, and built a three-dimensional model of the catalytic domain. The structural model permits us to discuss the potential functional roles of the conserved motifs and residues in replication and their potential interactions with inhibitors of related enzymes. We predict important structural attributes of potential anti-SARS-CoV RdRp nucleotide analog inhibitors: hydrogen-bonding capability for the 2' and 3' groups of the sugar ring and C3' endo sugar puckering, and the absence of a hydrophobic binding pocket for non-nucleoside analog inhibitors similar to those observed in hepatitis C virus RdRp and human immunodeficiency virus type 1 reverse transcriptase. We propose that the clinically observed resistance of SARS to ribavirin is probably due to perturbation of the conserved motif A that controls rNTP binding and fidelity of polymerization. Our results suggest that designing anti-SARS therapies can benefit from successful experiences in design of other antiviral drugs. This work should also provide guidance for future biochemical experiments.
机译:严重急性呼吸系统综合症(SARS)的病原体是以前未发现的冠状病毒SARS-CoV。 SARS-CoV的RNA依赖性RNA聚合酶(RdRp)在病毒复制中起关键作用,并且是抗SARS治疗的潜在靶标。缺乏任何冠状病毒聚合酶的结构或生化数据。为了提供对SARS-CoV RdRp的结构和功能的见解,我们找到了所有RdRps共有的保守基序,并建立了催化域的三维模型。结构模型使我们能够讨论保守的基序和残基在复制中的潜在功能作用以及它们与相关酶抑制剂的潜在相互作用。我们预测潜在的抗SARS冠状病毒RdRp核苷酸类似物抑制剂的重要结构属性:糖环的2'和3'基团的氢键结合能力和C3'内切糖褶皱,以及不存在疏水结合袋的非-核苷类似物抑制剂类似于在丙型肝炎病毒RdRp和人免疫缺陷病毒1型逆转录酶中观察到的抑制剂。我们提出临床上观察到的SARS对病毒唑的抗药性可能是由于控制rNTP结合和聚合保真度的保守基序A的扰动。我们的结果表明,设计抗SARS疗法可受益于其他抗病毒药物设计的成功经验。这项工作还应为将来的生化实验提供指导。

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