Barman Arghya, Hamelberg Donald
Department of Chemistry and the Center for Biotechnology and Drug Design, Georgia State University , Atlanta, Georgia 30302-4098, United States.
Biochemistry. 2014 Jun 17;53(23):3839-50. doi: 10.1021/bi5000977. Epub 2014 Jun 3.
Enzymes catalyze a plethora of chemical reactions that are tightly regulated and intricately coupled in biology. Catalysis of phosphorylation-dependent cis-trans isomerization of peptidyl-prolyl bonds, which act as conformational switches in regulating many post-phosphorylation processes, is considered to be one of the most critical. Pin1 is a cis-trans isomerase of peptidyl-prolyl(ω-) bonds of phosphorylated-Ser/Thr-Pro motifs and has been implicated in many diseases. Structural and experimental studies are still unable to resolve the mechanistic role and protonation states of two adjacent histidines (His59 and His157) and a cysteine (Cys113) in the active site of Pin1. Here, we show that the protonation state of Cys113 mediates a dynamic hydrogen-bonding network in the active site of Pin1, involving the two adjacent histidines and several other residues that are highly conserved and necessary for catalysis. We have used detailed free energy calculations and molecular dynamics simulations, complementing previous experiments, to resolve the ambiguities in the orientations of the histidines and protonation states of these key active site residues, details that are critical for fully understanding the mechanism of Pin1 and necessary for developing potent inhibitors. Importantly, Cys113 is shown to alternate between the unprotonated and neutral states, unprotonated in free Pin1 and neutral in substrate-bound Pin1. Our results are consistent with experiments and provide an explanation for the chemical reactivity of free Pin1 that is suggested to be necessary for the regulation of the enzyme.
酶催化大量化学反应,这些反应在生物学中受到严格调控且紧密耦合。催化磷酸化依赖性肽基 - 脯氨酰键的顺反异构化被认为是最关键的反应之一,该键在调节许多磷酸化后过程中起构象开关的作用。Pin1是磷酸化的丝氨酸/苏氨酸 - 脯氨酸基序的肽基 - 脯氨酰(ω - )键的顺反异构酶,与多种疾病有关。结构和实验研究仍无法解析Pin1活性位点中两个相邻组氨酸(His59和His157)和一个半胱氨酸(Cys113)的作用机制及质子化状态。在此,我们表明Cys113的质子化状态介导了Pin1活性位点中的动态氢键网络,涉及两个相邻组氨酸和其他几个高度保守且对催化作用必不可少的残基。我们使用了详细的自由能计算和分子动力学模拟,对先前的实验进行补充,以解决组氨酸取向和这些关键活性位点残基质子化状态的模糊性,这些细节对于全面理解Pin1的机制至关重要,也是开发有效抑制剂所必需的。重要的是,Cys113在未质子化和中性状态之间交替,在游离的Pin1中未质子化,在与底物结合的Pin1中呈中性。我们的结果与实验一致,并为游离Pin1的化学反应性提供了解释,这种反应性被认为是调节该酶所必需的。