首页> 外文OA文献 >Ribonuclease P (RNase P) RNA is converted to a Cd(2+)-ribozyme by a single Rp-phosphorothioate modification in the precursor tRNA at the RNase P cleavage site.
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Ribonuclease P (RNase P) RNA is converted to a Cd(2+)-ribozyme by a single Rp-phosphorothioate modification in the precursor tRNA at the RNase P cleavage site.

机译:核糖核酸酶P(RNase P)RNA通过在RNase P裂解位点的前体tRNA中的单个Rp-硫代磷酸酯修饰而转化为Cd(2 +)-核酶。

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摘要

To study the cleavage mechanism of bacterial Nase P RNA, we have synthesized precursor tRNA substrates carrying a single Rp- or Sp-phosphorothioate modification at the RNase P cleavage site. Both the Sp- and the Rp-diastereomer reduced the rate of processing by Escherichia coli RNase P RNA at least 1000-fold under conditions where the chemical step is rate-limiting. The Rp-modification had no effect and the Sp-modification had a moderate effect on precursor tRNA ground state binding to RNase P RNA. Processing of the Rp-diastereomeric substrate was largely restored in the presence of the "thiophilic" Cd2+ as the only divalent metal ion, demonstrating direct metal ion coordination to the (pro)-Rp substituent at the cleavage site and arguing against a specific role for Mg(2+)-ions at the pro-Sp oxygen. For the Rp-diastereomeric substrate, Hill plot analysis revealed a cooperative dependence upon [Cd2+] of nH = 1.8, consistent with a two-metal ion mechanism. In the presence of the Sp-modification, neither Mn2+ nor Cd2+ was able to restore detectable cleavage at the canonical site. Instead, the ribozyme promotes cleavage at the neighboring unmodified phosphodiester with low efficiency. Dramatic inhibition of the chemical step by both the Rp- and Sp-phosphorothioate modification is unprecedented among known ribozymes and points to unique features of transition state geometry in the RNase P RNA-catalyzed reaction.
机译:为了研究细菌Nase P RNA的切割机理,我们合成了在RNA酶P切割位点带有单个Rp-或Sp-磷酸硫代磷酸酯修饰的前体tRNA底物。在化学步骤是限速的条件下,Sp-和Rp-非对映异构体都将大肠杆菌RNase P RNA的加工速率降低了至少1000倍。 Rp修饰无效,而Sp修饰对前体tRNA基态与RNase P RNA的结合有中等影响。 Rp-非对映异构底物的加工在“亲硫的” Cd2 +作为唯一的二价金属离子的情况下得到了很大程度的恢复,这表明金属离子在裂解位点直接与(pro)-Rp取代基配位,并争论了对Mg(2+)离子在亲Sp氧处。对于Rp-非对映异构底物,希尔图分析显示nH = 1.8对[Cd2 +]的协同依赖性,与双金属离子机理一致。在Sp修饰的存在下,Mn2 +和Cd2 +均无法恢复经典位点的可检测裂解。相反,核酶以低效率促进在相邻的未修饰的磷酸二酯处的切割。在已知的核酶中,Rp-和Sp-硫代磷酸酯修饰对化学步骤的戏剧性抑制是前所未有的,并指出了RNase P RNA催化反应中过渡态几何的独特特征。

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