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All-atomic Molecular Dynamic Studies of Human CDK8: Insight into the A-loop Point Mutations and Binding with Its Partner CycC

机译:人类CDK8的全原子分子动力学研究:深入了解A环点突变和与其伴侣CycC的结合。

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摘要

The Mediator, a conserved multisubunit protein complex in eukaryotic organisms, regulates gene expression by bridging sequence-specific DNA-binding transcription factors to the general RNA polymerase II machinery. In yeast, Mediator complex is organized in three core modules (head, middle and tail) and a separable ‘CDK8 submodule’ consisting of four subunits including Cyclin-dependent kinase CDK8 (CDK8), Cyclin C (CycC), MED12, and MED13. The 3-D structure of human CDK8-CycC complex has been recently experimentally determined. To take advantage of this structure and the improved theoretical calculation methods, we have performed molecular dynamic simulations to study dynamics of CDK8 and two CDK8 point mutations (D173A and D189N), which have been identified in human cancers, with and without full length of the A-loop as well as the binding between CDK8 and CycC. We found that CDK8 structure gradually loses two helical structures during the 50-ns molecular dynamic simulation, likely due to the presence of the full-length A-loop. In addition, our studies showed the hydrogen bond occupation of the CDK8 A-loop increases during the first 20-ns MD simulation and stays stable during the later 30-ns MD simulation. Four residues in the A-loop of CDK8 have high hydrogen bond occupation, while the rest residues have low or no hydrogen bond occupation. The hydrogen bond dynamic study of the A-loop residues exhibits three types of changes: increasing, decreasing, and stable. Furthermore, the 3-D structures of CDK8 point mutations D173A, D189N, T196A and T196D have been built by molecular modeling and further investigated by 50-ns molecular dynamic simulations. D173A has the highest average potential energy, while T196D has the lowest average potential energy, indicating that T196D is the most stable structure. Finally, we calculated theoretical binding energy of CDK8 and CycC by MM/PBSA and MM/GBSA methods, and the negative values obtained from both methods demonstrate stability of CDK8-CycC complex. Taken together, these analyses will improve our understanding of the exact functions of CDK8 and the interaction with its partner CycC.
机译:介体是真核生物中一种保守的多亚基蛋白复合物,它通过将序列特异性DNA结合转录因子桥接到一般RNA聚合酶II机制来调节基因表达。在酵母中,介体复合物组织在三个核心模块(头部,中间和尾部)和一个可分离的“ CDK8亚模块”中,该模块由四个亚基组成,包括细胞周期蛋白依赖性激酶CDK8(CDK8),细胞周期蛋白C(CycC),MED12和MED13。人类CDK8-CycC复合物的3-D结构最近已通过实验确定。为了利用这种结构和改进的理论计算方法,我们已经进行了分子动力学模拟,以研究CDK8和两个CDK8点突变(D173A和D189N)的动力学,这些突变已在人类癌症中被发现,有或没有全长A环以及CDK8和CycC之间的结合。我们发现,在50 ns分子动力学模拟过程中,CDK8结构逐渐失去了两个螺旋结构,这可能是由于全长A环的存在所致。此外,我们的研究表明,在最初的20 ns MD模拟过程中,CDK8 A环的氢键占用增加,而在随后的30 ns MD模拟过程中,则保持稳定。 CDK8的A环中的四个残基具有较高的氢键占用,而其余残基具有低或无氢键占用。 A环残基的氢键动力学研究显示出三种类型的变化:增加,减少和稳定。此外,CDK8点突变D173A,D189N,T196A和T196D的3-D结构已通过分子建模构建,并通过50 ns分子动力学模拟进行了进一步研究。 D173A具有最高的平均势能,而T196D具有最低的平均势能,表明T196D是最稳定的结构。最后,我们通过MM / PBSA和MM / GBSA方法计算了CDK8和CycC的理论结合能,从这两种方法获得的负值证明了CDK8-CycC复合物的稳定性。综上所述,这些分析将增进我们对CDK8确切功能及其与其伴侣CycC相互作用的理解。

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