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Structural basis for substrate selectivity and nucleophilic substitution mechanisms in human adenine phosphoribosyltransferase catalyzed reaction

机译:人腺嘌呤磷酸核糖基转移酶催化反应中底物选择性和亲核取代机制的结构基础

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摘要

The reversible adenine phosphoribosyltransferase enzyme (APRT) is essential for purine homeostasis in prokaryotes and eukaryotes. In humans, APRT (hAPRT) is the only enzyme known to produce AMP in cells from dietary adenine. APRT can also process adenine analogs, which are involved in plant development or neuronal homeostasis. However, the molecular mechanism underlying substrate specificity of APRT and catalysis in both directions of the reaction remains poorly understood. Here we present the crystal structures of hAPRT complexed to three cellular nucleotide analogs (hypoxanthine, IMP, and GMP) that we compare with the phosphate-bound enzyme. We established that binding to hAPRT is substrate shape–specific in the forward reaction, whereas it is base-specific in the reverse reaction. Furthermore, a quantum mechanics/molecular mechanics (QM/MM) analysis suggests that the forward reaction is mainly a nucleophilic substitution of type 2 (SN2) with a mix of SN1-type molecular mechanism. Based on our structural analysis, a magnesium-assisted SN2-type mechanism would be involved in the reverse reaction. These results provide a framework for understanding the molecular mechanism and substrate discrimination in both directions by APRTs. This knowledge can play an instrumental role in the design of inhibitors, such as antiparasitic agents, or adenine-based substrates.
机译:可逆的腺嘌呤磷酸核糖基转移酶(APRT)对于原核生物和真核生物的嘌呤稳态是必不可少的。在人类中,APRT(hAPRT)是已知的从膳食腺嘌呤的细胞中产生AMP的唯一酶。 APRT还可以处理涉及植物发育或神经元稳态的腺嘌呤类似物。但是,APRT的底物特异性和在反应两个方向上的催化作用的分子机制仍然知之甚少。在这里,我们介绍了hAPRT的晶体结构,该结构与三种细胞核苷酸类似物(次黄嘌呤,IMP和GMP)复合,并与磷酸盐结合酶进行了比较。我们确定与hAPRT的结合在正向反应中是底物形状特异性,而在反向反应中是碱基特异性。此外,量子力学/分子力学(QM / MM)分析表明,正向反应主要是2型(SN2)的亲核取代,并带有SN1型分子机理。根据我们的结构分析,逆向反应将涉及镁辅助的SN2型机制。这些结果为理解APRT在两个方向上的分子机理和底物区分提供了一个框架。这些知识可以在抑制剂的设计中发挥重要作用,例如抗寄生虫药或基于腺嘌呤的底物。

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