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Molecular dynamics simulations of wild type and mutant of Pin1 peptidyl-prolyl isomerase
Authors:Shan Chang  Ren Kong  Li-qin Wang  Hang Shi  Lian-hua Piao
Institution:1. School of Electrical and Information Engineering, Institute of Bioinformatics and Medical Engineering, Jiangsu University of Technology, Changzhou, P.R. China;2. Changzhou College of Information Technology, Changzhou, P.R. China;3. School of Computer Science &4. Engineering, Jiangsu University of Technology, Changzhou, P.R. China
Abstract:Pin1 catalyses the intrinsically slow process of cis-trans isomerisation and has been identified as a possible drug target in many diseases. Recently, the wild type (WT) and the Cys113Asp mutant of the Pin1 peptidyl-prolyl isomerase (PPIase) domain were determined by nuclear magnetic resonance. In this article, the WT and Cys113Asp mutant of PPIase domain are studied by molecular dynamics simulations. The structural stability analysis shows that the Cys113Asp mutation leads to the higher fluctuation of hydrophobic core in PPIase domain. The intrinsic correlated motions are important for the catalytic function of Pin1, whereas the Cys113Asp mutant system loses pivotal dynamical properties and develops wider conformational states than those in WT system. The intramolecular hydrogen bonds play crucial roles in the structural stability of PPIase domain. The mutated residue Asp113 attracts the side chain of His59 in the Cys113Asp system, which unbalances the internal interactions inside the catalytic tetrad. Meanwhile, the conformational changes of PPIase domain affect the side chain orientations of Lys63 and Arg69, which limit their binding with substrates. The Cys113Asp mutation destabilises the whole binding region of Pin1 PPIase domain, so the catalysis activity is severely reduced. These results are consistent with experimental studies and may help to understand the isomerisation mechanisms of Pin1.
Keywords:Pin1 PPIase domain  molecular dynamics simulation  conformational change  hydrogen bond
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