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Three critical hydrogen bonds determine the catalytic activity of the Diels-Alderase ribozyme

机译:三个关键氢键决定Diels-Alderase核酶的催化活性

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Compared to protein enzymes, our knowledge about how RNA accelerates chemical reactions is rather limited. The crystal structures of a ribozyme that catalyzes Diels-Alder reactions suggest a rich tertiary architecture responsible for catalysis. In this study, we systematically probe the relevance of crystallographically observed ground-state interactions for catalytic function using atomic mutagenesis in combination with various analytical techniques. The largest energetic contribution apparently arises from the precise shape complementarity between transition state and catalytic pocket: A single point mutant that folds correctly into the tertiary structure but lacks one H-bond that normally stabilizes the pocket is completely inactive. In the rate-limiting chemical step, the dienophile is furthermore activated by two weak H-bonds that contribute similar to 7-8 kJ/mol to transition state stabilization, as indicated by the 25-fold slower reaction rates of deletion mutants. These H-bonds are also responsible for the tight binding of the Diels-Alder product by the ribozyme that causes product inhibition. For high catalytic activity, the ribozyme requires a fine-tuned balance between rigidity and flexibility that is determined by the combined action of one inter-strand H-bond and one magnesium ion. A sharp 360 degrees turn reminiscent of the T-loop motif observed in tRNA is found to be important for catalytic function.
机译:与蛋白质酶相比,我们对RNA如何促进化学反应的了解非常有限。催化Diels-Alder反应的核酶的晶体结构表明,丰富的第三级结构负责催化作用。在这项研究中,我们系统地探索了使用原子诱变结合各种分析技术在晶体学上观察到的基态相互作用与催化功能的相关性。最大的能量贡献显然来自于过渡态与催化口袋之间的精确形状互补:单点突变体可正确折叠成三级结构,但缺乏通常能稳定口袋的H键,因此完全没有活性。在限速化学步骤中,亲二烯体还被两个弱H键激活,这两个弱H键对过渡态稳定的贡献接近7-8 kJ / mol,如缺失突变体的25倍慢的反应速率所示。这些氢键还负责引起酶抑制的核酶与Diels-Alder产品的紧密结合。对于高催化活性,核酶需要在刚性和柔韧性之间进行微调的平衡,该平衡是由一种链间氢键和一种镁离子的联合作用决定的。发现急剧的360度转角让人联想到tRNA中观察到的T环基序,对催化功能很重要。

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