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Molecular Bases of Catalysis and ADP-Ribose Preference of Human Mn2+-Dependent ADP-Ribose/CDP-Alcohol Diphosphatase and Conversion by Mutagenesis to a Preferential Cyclic ADP-Ribose Phosphohydrolase

机译:依赖于人类Mn2 +的ADP-核糖/ CDP-醇二磷酸酶的催化​​和ADP-核糖偏好的分子基础以及通过诱变转化为优先环ADP-核糖磷酸水解酶的分子基础。

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摘要

Among metallo-dependent phosphatases, ADP-ribose/CDP-alcohol diphosphatases form a protein family (ADPRibase-Mn-like) mainly restricted, in eukaryotes, to vertebrates and plants, with preferential expression, at least in rodents, in immune cells. Rat and zebrafish ADPRibase-Mn, the only biochemically studied, are phosphohydrolases of ADP-ribose and, somewhat less efficiently, of CDP-alcohols and 2´,3´-cAMP. Furthermore, the rat but not the zebrafish enzyme displays a unique phosphohydrolytic activity on cyclic ADP-ribose. The molecular basis of such specificity is unknown. Human ADPRibase-Mn showed similar activities, including cyclic ADP-ribose phosphohydrolase, which seems thus common to mammalian ADPRibase-Mn. Substrate docking on a homology model of human ADPRibase-Mn suggested possible interactions of ADP-ribose with seven residues located, with one exception (Cys253), either within the metallo-dependent phosphatases signature (Gln27, Asn110, His111), or in unique structural regions of the ADPRibase-Mn family: s2s3 (Phe37 and Arg43) and h7h8 (Phe210), around the active site entrance. Mutants were constructed, and kinetic parameters for ADP-ribose, CDP-choline, 2´,3´-cAMP and cyclic ADP-ribose were determined. Phe37 was needed for ADP-ribose preference without catalytic effect, as indicated by the increased ADP-ribose K m and unchanged k cat of F37A-ADPRibase-Mn, while the K m values for the other substrates were little affected. Arg43 was essential for catalysis as indicated by the drastic efficiency loss shown by R43A-ADPRibase-Mn. Unexpectedly, Cys253 was hindering for cADPR phosphohydrolase, as indicated by the specific tenfold gain of efficiency of C253A-ADPRibase-Mn with cyclic ADP-ribose. This allowed the design of a triple mutant (F37A+L196F+C253A) for which cyclic ADP-ribose was the best substrate, with a catalytic efficiency of 3.5´104 M-1s-1 versus 4´103 M-1s-1 of the wild type.
机译:在金属依赖性磷酸酶中,ADP-核糖/ CDP-醇二磷酸酶形成一个蛋白质家族(ADPRibase-Mn-like),主要在真核生物中被限制在脊椎动物和植物中,至少在啮齿动物中优先表达,且在免疫细胞中优先表达。对大鼠和斑马鱼ADPRibase-Mn进行了唯一的生化研究,它们是ADP-核糖的磷酸水解酶,而CDP醇和2´,3´-cAMP的水解效率较低。此外,大鼠而不是斑马鱼酶对环状ADP-核糖表现出独特的磷酸水解活性。这种特异性的分子基础是未知的。人类ADPRibase-Mn具有相似的活性,包括环状ADP-核糖磷酸水解酶,因此似乎是哺乳动物ADPRibase-Mn所共有的。在人类ADPRibase-Mn同源性模型上的底物对接表明,ADP-核糖可能与位于金属依赖性磷酸酶标记(Gln 253 )存在一个可能的相互作用。 > 27 ,Asn 110 ,His 111 )或ADPRibase-Mn家族的独特结构区域:s2s3(Phe 37 和Arg 43 )和h7h8(Phe 210 ),位于活动站点入口附近。构建突变体,并确定ADP-核糖,CDP-胆碱,2′,3′-cAMP和环状ADP-核糖的动力学参数。如无ADP核糖偏好而没有催化作用,则需要Phe 37 ,如F37A-ADPRibase-Mn的ADP核糖K m增加和k cat不变,而其他底物的K m值所示。几乎没有受到影响。 R43A-ADPRibase-Mn的效率急剧下降表明,Arg 43 对于催化至关重要。出乎意料的是,Cys 253 阻碍了cADPR磷酸水解酶的产生,这是由于C253A-ADPRibase-Mn与环状ADP-核糖的比效率提高了十倍。这样就可以设计一个三重突变体(F37A + L196F + C253A),其中环状ADP-核糖是最好的底物,催化效率为3.5´10 4 M -1 s -1 与野生型4´10 3 M -1 s -1

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