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首页> 外文期刊>Journal of Molecular Biology >A divalent cation stabilizes the active conformation of the B. subtilis RNase P x pre-tRNA complex: a role for an inner-sphere metal ion in RNase P.
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A divalent cation stabilizes the active conformation of the B. subtilis RNase P x pre-tRNA complex: a role for an inner-sphere metal ion in RNase P.

机译:二价阳离子稳定枯草芽孢杆菌RNase P x pre-tRNA复合物的活性构象:RNase P中内球金属离子的作用。

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摘要

Metal ions interact with RNA to enhance folding, stabilize structure, and, in some cases, facilitate catalysis. Assigning functional roles to specifically bound metal ions presents a major challenge in analyzing the catalytic mechanisms of ribozymes. Bacillus subtilis ribonuclease P (RNase P), composed of a catalytically active RNA subunit (PRNA) and a small protein subunit (P protein), catalyzes the 5'-end maturation of precursor tRNAs (pre-tRNAs). Inner-sphere coordination of divalent metal ions to PRNA is essential for catalytic activity but not for the formation of the RNase P x pre-tRNA (enzyme-substrate, ES) complex. Previous studies have demonstrated that this ES complex undergoes an essential conformational change (to the ES* conformer) before the cleavage step. Here, we show that the ES* conformer is stabilized by a high-affinity divalent cation capable of inner-sphere coordination, such as Ca(II) or Mg(II). Additionally, a second, lower-affinity Mg(II) activates cleavage catalyzed by RNase P. Structural changes that occur upon binding Ca(II) to the ES complex were determined by time-resolved Forster resonance energy transfer measurements of the distances between donor-acceptor fluorophores introduced at specific locations on the P protein and pre-tRNA 5' leader. These data demonstrate that the 5' leader of pre-tRNA moves 4 to 6 A closer to the PRNA x P protein interface during the ES-to-ES* transition and suggest that the metal-dependent conformational change reorganizes the bound substrate in the active site to form a catalytically competent ES* complex.
机译:金属离子与RNA相互作用以增强折叠,稳定结构,并在某些情况下促进催化作用。将功能角色分配给特异性结合的金属离子在分析核酶的催化机理方面提出了重大挑战。枯草芽孢杆菌核糖核酸酶P(RNase P)由催化活性RNA亚基(PRNA)和小蛋白亚基(P蛋白)组成,可催化前体tRNA(pre-tRNA)的5'端成熟。二价金属离子与PRNA的球内配位对于催化活性至关重要,但对于RNase P x pre-tRNA(酶-底物,ES)复合物的形成则不是必需的。先前的研究表明,这种ES复合物在裂解步骤之前经历了必不可少的构象变化(对ES *构象异构体)。在这里,我们显示ES *构象异构体由能够进行内球配位的高亲和力二价阳离子(例如Ca(II)或Mg(II))稳定。此外,第二个较低亲和力的Mg(II)激活RNase P催化的裂解。将Ca(II)结合到ES复合物后,通过时间分辨的Forster共振能量转移测量来确定供体-受体之间的距离,从而确定发生结构改变。在P蛋白和pre-tRNA 5'前导序列的特定位置引入了受体荧光团。这些数据表明,在ES到ES *的过渡过程中,pre-tRNA的5'末端向PRNA x P蛋白界面移动了4至6 A,并表明金属依赖性构象变化会重组活性分子中结合的底物位点形成催化活性的ES *复合物。

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