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Deprotonation states of the two active site water molecules regulate the binding of protein phosphatase 5 with its substrate: A molecular dynamics study

机译:两个活性位点水分子的质子化状态调节蛋白磷酸酶5与其底物的结合:分子动力学研究

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摘要

Protein phosphatase 5 (PP5), mainly localized in human brain, can dephosphorylate tau protein whose high level of phosphorylation is related to Alzheimer's disease. Similar to other protein phosphatases, PP5 has a conserved motif in the catalytic domain that contains two binding sites for manganese (Mn2+) ions. Structural data indicate that two active site water molecules, one bridging the two Mn2+ ions and the other terminally coordinated with one of the Mn2+ ions (Mn1), are involved in catalysis. Recently, a density functional theory study revealed that the two water molecules can be both deprotonated to keep a neutral active site for catalysis. The theoretical study gives us an insight into the catalytic mechanism of PP5, but the knowledge of how the deprotonation states of the two water molecules affect the binding of PP5 with its substrate is still lacking. To approach this problem, molecular dynamics simulations were performed to model the four possible deprotonation states. Through structural, dynamical and energetic analyses, the results demonstrate that the deprotonation states of the two water molecules affect the structure of the active site including the distance between the two Mn2+ ions and their coordination, impact the interaction energy of residues R275, R400 and H304 which directly interact with the substrate phosphoserine, and mediate the dynamics of helix αJ which is involved in regulation of the enzyme's activity. Furthermore, the deprotonation state that is preferable for PP5 binding of its substrate has been identified. These findings could provide new design strategy for PP5 inhibitor.
机译:蛋白磷酸酶5(PP5)主要位于人脑中,可以使tau蛋白脱磷酸化,而tau蛋白的高磷酸化水平与阿尔茨海默氏病有关。与其他蛋白质磷酸酶类似,PP5在催化结构域中具有保守的基序,其中包含两个与锰(Mn 2 + )离子的结合位点。结构数据表明,两个活性位点水分子是一个桥接两个Mn 2 + 离子,另一个末端与其中一个Mn 2 + 离子(Mn1)配位的分子。参与催化。最近,一项密度泛函理论研究表明,两个水分子都可以被去质子化,以保持中性的催化活性位。理论研究使我们对PP5的催化机理有了深入的了解,但仍然缺乏关于两个水分子的质子化状态如何影响PP5与底物结合的知识。为了解决这个问题,进行了分子动力学模拟以模拟四个可能的质子化状态。通过结构,动力学和能量分析,结果表明两个水分子的质子化状态影响了活性位点的结构,包括两个Mn 2 + 离子之间的距离及其配位关系,从而影响了活性位点。与底物磷酸丝氨酸直接相互作用的残基R275,R400和H304的相互作用能,并介导参与酶活性调节的螺旋αJ的动力学。此外,已经确定了对于其底物的PP5结合而言优选的去质子化状态。这些发现可以为PP5抑制剂的设计提供新的策略。

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