结核分枝杆菌5-磷酸核糖异构酶底物摄取机制研究及药物开发展望

L. Bartkevihi, Í. Caruso, Bruna Martins, J. Pires, D. Oliveira, C. D. Anobom, Fábio Luz Almeida
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摘要

二聚体核糖5-磷酸异构酶B (RpiB)的活性位点含有一个由残基H12、R113、R137和R141组成的溶剂暴露屏障,该屏障在磷酸盐络合时关闭。底物核糖5-磷酸(R5P)必须克服表面屏障到达内部空腔,然后以核糖的线性结构结合到两个亚基之间的界面上。核磁共振和分子动力学模拟是描述RpiB活性位点的瞬态性质和帮助我们理解底物进入机制的合适方法。在这项研究中,我们发现核苷酸AMP/ADP进入结核分枝杆菌RpiB (MtRpiB)的内腔并不涉及通常在许多酶中观察到的典型的开/闭盖构象转变。相反,一种翻转机制,其中核苷酸磷酸盐与表面屏障相互作用,然后是含氮碱基和核糖的翻转,负责将底物/配体的方向从溶剂暴露状态改变为埋藏状态。基于这些结果,我们提出了一种底物/抑制剂摄取机制,可以为利用MtRpiB合理设计药物提供基础,MtRpiB是一种必需酶,也是药物开发的良好靶点。
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Insights into the Substrate Uptake Mechanism of Mycobacterium Tuberculosis Ribose 5-Phosphate Isomerase and Perspectives on Drug Development
The active site of the dimeric ribose 5-phosphate isomerase B (RpiB) contains a solvent-exposed barrier formed by residues H12, R113, R137, and R141, which is closed upon the complexation of phosphate. The substrate ribose 5-phosphate (R5P) has to overcome the surface barrier to reach an internal cavity and then bind in the linear configuration of ribose to the interface between the two subunits. NMR and molecular dynamics simulation are suitable methods to describe the transient nature of the RpiB active site and help our understanding of the mechanism of substrate entrance. In this study, we show that the entrance of the nucleotides AMP/ADP into the internal cavity of mycobacterium tuberculosis RpiB (MtRpiB) does not involve a canonical open/close-lid conformational transition usually observed in many enzymes. Instead, a flipping mechanism in which the nucleotide phosphate interacts with the surface barrier followed by the flip of the nitrogenous base and ribose is responsible for changing the substrate/ligand orientation from a solvent-exposed to a buried state. Based on these results, we propose a substrate/inhibitor uptake mechanism that could provide a basis for rational drug design using MtRpiB, which is an essential enzyme and a good target for drug development.
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