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精氨酸激酶与 ADP、硝酸盐和各种磷酸原类似物复合物的晶体结构。

Crystal structures of arginine kinase in complex with ADP, nitrate, and various phosphagen analogs.

机构信息

Institute of Molecular Biophysics, Department of Chemistry & Biochemistry, Florida State University, Tallahassee, FL 32306-4380, USA.

出版信息

Biochem Biophys Res Commun. 2012 Oct 12;427(1):212-7. doi: 10.1016/j.bbrc.2012.09.053. Epub 2012 Sep 17.

Abstract

Arginine kinase catalyzes the reversible transfer of a phosphoryl group between ATP and l-arginine and is a monomeric homolog of the human enzyme creatine kinase. Arginine and creatine kinases belongs to the phosphagen kinase family of enzymes, which consists of eight known members, each of which is specific for its own phosphagen. Here, the source of phosphagen specificity in arginine kinase is investigated through the use of phosphagen analogs. Crystal structures have been determined for Limulus polyphemus arginine kinase with one of four arginine analogs bound in a transition state analog complex: l-ornithine, l-citrulline, imino-l-ornithine, and d-arginine. In all complexes, the enzyme achieves a closed conformation very similar to that of the cognate transition state analog complex, but differences are observed in the configurations of bound ligands. Arginine kinase exhibits no detectable activity towards ornithine, citrulline, or imino-l-ornithine, and only trace activity towards d-arginine. The crystal structures presented here demonstrate that phosphagen specificity is derived neither from a lock-and-key mechanism nor a modulation of induced-fit conformational changes, but potentially from subtle distortions in bound substrate configurations.

摘要

精氨酸激酶催化 ATP 和 l-精氨酸之间磷酸基团的可逆转移,是人类肌酸激酶的单体同源物。精氨酸激酶和肌酸激酶属于磷酸原激酶家族的酶,该家族由 8 个已知成员组成,每个成员都对其自身的磷酸原具有特异性。在这里,通过使用磷酸原类似物研究了精氨酸激酶中磷酸原特异性的来源。已经确定了四种精氨酸类似物之一结合在过渡态类似物复合物中的 Limulus polyphemus 精氨酸激酶的晶体结构:l-鸟氨酸、l-瓜氨酸、亚氨基-l-鸟氨酸和 d-精氨酸。在所有复合物中,酶都达到了与天然过渡态类似物复合物非常相似的封闭构象,但结合配体的构型存在差异。精氨酸激酶对鸟氨酸、瓜氨酸或亚氨基-l-鸟氨酸没有检测到可检测的活性,对 d-精氨酸只有微量活性。这里呈现的晶体结构表明,磷酸原特异性既不是来自锁钥机制,也不是诱导契合构象变化的调节,而是可能来自结合底物构型的细微扭曲。

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