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Structure Dynamics and Interaction of Mycobacterium tuberculosis (Mtb) DprE1 and DprE2 Examined by Molecular Modeling Simulation and Electrostatic Studies

机译:通过分子建模模拟和静电学研究检查了结核分枝杆菌(DtE1)和DprE2的结构动力学和相互作用

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摘要

The enzymes decaprenylphosphoryl-β-D-ribose oxidase (DprE1) and decaprenylphosphoryl-β-D-ribose-2-epimerase (DprE2) catalyze epimerization of decaprenylphosporyl ribose (DPR) todecaprenylphosporyl arabinose (DPA) and are critical for the survival of Mtb. Crystal structures of DprE1 so far reported display significant disordered regions and no structural information is known for DprE2. We used homology modeling, protein threading, molecular docking and dynamics studies to investigate the structural and dynamic features of Mtb DprE1 and DprE2 and DprE1-DprE2 complex. A three-dimensional model for DprE2 was generated using the threading approach coupled with ab initio modeling. A 50 ns simulation of DprE1 and DprE2 revealed the overall stability of the structures. Principal Component Analysis (PCA) demonstrated the convergence of sampling in both DprE1 and DprE2. In DprE1, residues in the 269–330 area showed considerable fluctuation in agreement with the regions of disorder observed in the reported crystal structures. In DprE2, large fluctuations were detected in residues 95–113, 146–157, and 197–226. The study combined docking and MD simulation studies to map and characterize the key residues involved in DprE1-DprE2 interaction. A 60 ns MD simulation for DprE1-DprE2 complex was also performed. Analysis of data revealed that the docked complex is stabilized by H-bonding, hydrophobic and ionic interactions. The key residues of DprE1 involved in DprE1-DprE2 interactions belong to the disordered region. We also examined the docked complex of DprE1-BTZ043 to investigate the binding pocket of DprE1 and its interactions with the inhibitor BTZ043. In summary, we hypothesize that DprE1-DprE2 interaction is crucial for the synthesis of DPA and DprE1-DprE2 complex may be a new therapeutic target amenable to pharmacological validation. The findings have important implications in tuberculosis (TB) drug discovery and will facilitate drug development efforts against TB.
机译:癸二烯基磷酸基-β-D-核糖氧化酶(DprE1)和癸二烯基磷酸基-β-D-核糖-2-表异构酶(DprE2)酶催化癸烯基磷酰核糖(DPR)的差向异构化,从而使癸烯基磷酰阿拉伯糖(DPA)的存活至关重要。迄今报道的DprE1的晶体结构显示出明显的无序区域,DprE2的结构信息未知。我们使用同源性建模,蛋白质穿线,分子对接和动力学研究来研究Mtb DprE1和DprE2和DprE1-DprE2复合物的结构和动力学特征。 DprE2的三维模型是使用线程方法和从头开始建模生成的。 DprE1和DprE2的50 ns模拟显示了结构的整体稳定性。主成分分析(PCA)显示了DprE1和DprE2中采样的收敛性。在DprE1中,269-330区的残基显示出与报告的晶体结构中观察到的无序区域一致的大幅波动。在DprE2中,在残基95-113、146-157和197-226中检测到较大的波动。这项研究结合了对接和MD模拟研究,以绘制和表征涉及DprE1-DprE2相互作用的关键残基。还对DprE1-DprE2复合物进行了60 ns的MD模拟。数据分析表明,对接的配合物通过氢键,疏水和离子相互作用而稳定。参与DprE1-DprE2相互作用的DprE1的关键残基属于无序区域。我们还检查了DprE1-BTZ043的对接复合物,以研究DprE1的结合口袋及其与抑制剂BTZ043的相互作用。总而言之,我们假设DprE1-DprE2相互作用对于DPA的合成至关重要,DprE1-DprE2复合物可能是适合药理学验证的新治疗靶标。这些发现对结核病(TB)药物的发现具有重要意义,并将促进针对结核病的药物开发工作。

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