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环L1动力学对铜绿假单胞菌d-精氨酸脱氢酶底物捕获和催化的重要性

Importance of Loop L1 Dynamics for Substrate Capture and Catalysis in Pseudomonas aeruginosa d-Arginine Dehydrogenase.

作者信息

Ouedraogo Daniel, Souffrant Michael, Vasquez Sheena, Hamelberg Donald, Gadda Giovanni

机构信息

Department of Chemistry, ‡Department of Biology, §Center for Diagnostics and Therapeutics, and ∥Center for Biotechnology and Drug Design, Georgia State University , Atlanta, Georgia 30302, United States.

出版信息

Biochemistry. 2017 May 16;56(19):2477-2487. doi: 10.1021/acs.biochem.7b00098. Epub 2017 May 2.

Abstract

Mobile loops located at the active site entrance in enzymes often participate in conformational changes required to shield the reaction from bulk solvent, to control the access of the substrate to the active site, and to position residues for substrate binding and catalysis. In d-arginine dehydrogenase from Pseudomonas aeruginosa (PaDADH), previous crystallographic data suggested that residues 45-47 in the FAD-binding domain and residues 50-56 in the substrate-binding domain in loop L1 could adopt two distinct conformations. In this study, we have used molecular dynamics, kinetics, and fluorescence spectroscopy on the S45A and A46G enzyme variants of PaDADH to investigate the impact of mutations in loop L1 on the catalytic function of the enzyme. Molecular dynamics showed that the mutant enzymes have probabilities of being in open conformations that are higher than that of wild-type PaDADH of loop L1, yielding an increased level of solvent exposure of the active site. In agreement, the flavin fluorescence intensity was ∼2-fold higher in the S45A and A46G enzymes than in wild-type PaDADH, with a 9 nm bathochromic shift of the emission band. In the variant enzymes, the k/K values with d-arginine were ∼13-fold lower than in wild-type PaDADH. Moreover, the pH profiles for the k value with d-arginine showed a hollow, consistent with restricted proton movements in catalysis, and no saturation was achieved with the alternate substrate d-leucine in the reductive half-reaction of the variant enzymes. Taken together, the computational and experimental data are consistent with the dynamics of loop L1 being important for substrate capture and catalysis in PaDADH.

摘要

位于酶活性位点入口处的可移动环常常参与构象变化,这些变化对于将反应与大量溶剂隔离、控制底物进入活性位点以及为底物结合和催化定位残基是必需的。在铜绿假单胞菌的d - 精氨酸脱氢酶(PaDADH)中,先前的晶体学数据表明,黄素腺嘌呤二核苷酸(FAD)结合结构域中的45 - 47位残基以及环L1中底物结合结构域中的50 - 56位残基可以采取两种不同的构象。在本研究中,我们对PaDADH的S45A和A46G酶变体进行了分子动力学、动力学和荧光光谱研究,以探究环L1中的突变对该酶催化功能的影响。分子动力学表明,突变酶处于开放构象的概率高于野生型PaDADH的环L1,导致活性位点的溶剂暴露水平增加。与此一致的是,S45A和A46G酶中的黄素荧光强度比野生型PaDADH高约2倍,发射带发生了9纳米的红移。在变体酶中,与d - 精氨酸的k/K值比野生型PaDADH低约13倍。此外,d - 精氨酸的k值的pH曲线呈中空状,这与催化过程中质子移动受限一致,并且在变体酶的还原半反应中,替代底物d - 亮氨酸未达到饱和。综上所述,计算和实验数据一致表明,环L1的动力学对于PaDADH中的底物捕获和催化很重要。

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