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Exploring the effect of N308D mutation on protein tyrosine phosphatase-2 cause gain-of-function activity by a molecular dynamics study

机译:探讨N308D突变对蛋白质酪氨酸磷酸酶-2的影响因子动力学研究导致函数活性

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摘要

One of the most common protein tyrosine phosphatase-2 (SHP2) mutations in Noonan syndrome is the N308D mutation, and it increases the activity of the protein. However, the molecular basis of the activation of N308D mutation on SHP2 conformations is poorly understood. Here, molecular dynamic simulations were performed on SHP2 and SHP2-N308D to explore the effect of N308D mutation on SHP2 cause gain of function activity, respectively. The principal component analysis, dynamic cross-correlation map, secondary structure analysis, residue interaction networks, and solvent accessible surface area analysis suggested that the N308D mutation distorted the residues interactions network between the allosteric site (residue Gly244-Gly246) and C-SH2 domain, including the hydrogen bond formation and the binding energy. Meanwhile, the activity of catalytic site (residue Gly503-Val505) located in the Q-loop in mutant increased due to this region's high fluctuations. Therefore, the substrate had more chances to access to the catalytic activity site of the precision time protocol domain of SHP2-N308D, which was easy to be exposed. In addition, we had speculated that the Lys244 located in the allosteric site was the key residue which lead to the protein conformation changes. Consequently, overall calculations presented in this study ultimately provide a useful understanding of the increased activity of SHP2 caused by the N308D mutation.
机译:Noonan综合征中最常见的蛋白质酪氨酸磷酸酶-2(SHP2)突变中的一种是N308D突变,并且增加了蛋白质的活性。然而,在SHP2构象上激活N308D突变的分子基础是较差的。这里,在SHP2和SHP2-N308D上进行分子动态模拟,探讨N308D突变对SHP2的影响,分别导致功能活动的增益。主成分分析,动态互相关图,二次结构分析,残余物相互作用网络和溶剂可接近的表面积分析表明,N308D突变在变构位点(残基GLY244-GLY246)和C-SH2结构域之间的残留相互作用网络变化,包括氢键形成和结合能量。同时,由于该区域的高波动,位于突变体中的Q环中的催化位点(残留剂GLY503-VAL505)的活性增加。因此,底物有可能进入SHP2-N308D的精密时间协议结构域的催化活性位点,这易于暴露。此外,我们推测,位于变构位点的Lys244是导致蛋白质构象变化的关键残留物。因此,本研究中提出的整体计算最终对由N308D突变引起的SHP2的活性增加,提供了有用的理解。

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