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Catalytic mechanism of the tryptophan activation reaction revealed by crystal structures of human tryptophanyl-tRNA synthetase in different enzymatic states

机译:不同酶状态人色氨酸-tRNA合成酶晶体结构揭示色氨酸活化反应的催化机理

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Human tryptophanyl-tRNA synthetase (hTrpRS) differs from its bacterial counterpart at several key positions of the catalytic active site and has an extra N-terminal domain, implying possibly a different catalytic mechanism. We report here the crystal structures of hTrpRS in complexes with Trp, tryptophanamide and ATP and tryptophanyl-AMP, respectively, which represent three different enzymatic states of the Trp activation reaction. Analyses of these structures reveal the molecular basis of the mechanisms of the substrate recognition and the activation reaction. The dimeric hTrpRS is structurally and functionally asymmetric with half-of-the-sites reactivity. Recognition of Trp is by an induced-fit mechanism involving conformational change of the AIDQ motif that creates a perfect pocket for the binding and activation of Trp and causes coupled movements of the N-terminal and C-terminal domains. The KMSAS loop appears to have an inherent flexibility and the binding of ATP stabilizes it in a closed conformation that secures the position of ATP for catalysis. Our structural data indicate that the catalytic mechanism of the Trp activation reaction by hTrpRS involves more moderate conformational changes of the structural elements at the active site to recognize and bind the substrates, which is more complex and fine-tuned than that of bacterial TrpRS.
机译:人色氨酸-tRNA合成酶(hTrpRS)在催化活性位点的几个关键位置与细菌的色氨酸不同,并且具有一个额外的N末端结构域,这可能意味着不同的催化机制。我们在这里报告hTrpRS分别与Trp,色氨酸酰胺和ATP和色氨酸-AMP配合物的晶体结构,它们代表了Trp活化反应的三种不同的酶促状态。这些结构的分析揭示了底物识别和活化反应机理的分子基础。二聚体hTrpRS在结构和功能上不对称,具有一半的位反应性。 Trp的识别是通过诱导拟合机制进行的,该机制涉及AIDQ基序的构象变化,从而为Trp的结合和激活创造一个完美的口袋,并引起N端和C端域的耦合运动。 KMSAS环似乎具有固有的柔韧性,并且ATP的结合将其稳定在一个封闭的构象中,从而确保了ATP在催化中的位置。我们的结构数据表明,hTrpRS激活Trp的反应机理涉及活性位点结构元素更适度的构象变化,以识别并结合底物,这比细菌TrpRS更为复杂和微调。

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