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刚地弓形虫腺苷激酶的晶体结构揭示了一种新的催化机制和前药结合方式。

Crystal structures of Toxoplasma gondii adenosine kinase reveal a novel catalytic mechanism and prodrug binding.

作者信息

Schumacher M A, Scott D M, Mathews I I, Ealick S E, Roos D S, Ullman B, Brennan R G

机构信息

Department of Biochemistry and Molecular Biology, Vollum Institute, Oregon Health Sciences University, Portland 97201-3098, USA.

出版信息

J Mol Biol. 2000 May 19;298(5):875-93. doi: 10.1006/jmbi.2000.3753.

DOI:10.1006/jmbi.2000.3753
PMID:10801355
Abstract

Adenosine kinase (AK) is a key purine metabolic enzyme from the opportunistic parasitic protozoan Toxoplasma gondii and belongs to the family of carbohydrate kinases that includes ribokinase. To understand the catalytic mechanism of AK, we determined the structures of the T. gondii apo AK, AK:adenosine complex and the AK:adenosine:AMP-PCP complex to 2.55 A, 2.50 A and 1.71 A resolution, respectively. These structures reveal a novel catalytic mechanism that involves an adenosine-induced domain rotation of 30 degrees and a newly described anion hole (DTXGAGD), requiring a helix-to-coil conformational change that is induced by ATP binding. Nucleotide binding also evokes a coil-to-helix transition that completes the formation of the ATP binding pocket. A conserved dipeptide, Gly68-Gly69, which is located at the bottom of the adenosine-binding site, functions as the switch for domain rotation. The synergistic structural changes that occur upon substrate binding sequester the adenosine and the ATP gamma phosphate from solvent and optimally position the substrates for catalysis. Finally, the 1.84 A resolution structure of an AK:7-iodotubercidin:AMP-PCP complex reveals the basis for the higher affinity binding of this prodrug over adenosine and thus provides a scaffold for the design of new inhibitors and subversive substrates that target the T. gondii AK.

摘要

腺苷激酶(AK)是机会性寄生原生动物刚地弓形虫中的一种关键嘌呤代谢酶,属于包括核糖激酶在内的碳水化合物激酶家族。为了解AK的催化机制,我们分别测定了刚地弓形虫无配体AK、AK:腺苷复合物以及AK:腺苷:AMP-PCP复合物的结构,分辨率分别为2.55 Å、2.50 Å和1.71 Å。这些结构揭示了一种新的催化机制,该机制涉及腺苷诱导的30度结构域旋转以及一个新描述的阴离子空穴(DTXGAGD),这需要由ATP结合诱导的从螺旋到卷曲的构象变化。核苷酸结合还引发从卷曲到螺旋的转变,从而完成ATP结合口袋的形成。位于腺苷结合位点底部的保守二肽Gly68-Gly69,作为结构域旋转的开关。底物结合时发生的协同结构变化将腺苷和ATPγ磷酸基团与溶剂隔离,并将底物最佳定位以进行催化。最后,AK:7-碘结核菌素:AMP-PCP复合物的1.84 Å分辨率结构揭示了这种前药比腺苷具有更高亲和力结合的基础,从而为设计靶向刚地弓形虫AK的新型抑制剂和颠覆性底物提供了一个框架。

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