Nanyang Technological University, School of Biological Sciences, 60 Nanyang Drive, Singapore 637551, Republic of Singapore.
Nanyang Technological University, School of Biological Sciences, 60 Nanyang Drive, Singapore 637551, Republic of Singapore.
Biochim Biophys Acta Gen Subj. 2017 Sep;1861(9):2354-2366. doi: 10.1016/j.bbagen.2017.05.007. Epub 2017 May 10.
Mycobacteria employ a versatile machinery of the mycothiol-dependent system, containing the proteins mycothiol disulfide reductase (Mtr), the oxido-reductase Mycoredoxin-1 (Mrx-1) and the alkyl-hydroperoxide subunit E (AhpE). The mycothiol-dependent protein ensemble regulates the balance of oxidized-reduced mycothiol, to ensure a reductive intracellular environment for optimal functioning of its proteins even upon exposure to oxidative stress. Here, we determined the first low-resolution solution structure of Mycobacterium tuberculosis Mtr (MtMtr) derived from small-angle X-ray scattering data, which provides insight into its dimeric state. The solution shape reveals the two NADPH-binding domains inside the dimeric MtMtr in different conformations. NMR-titration shows that the MtMtr-MtMrx-1 interaction is characterized by a fast exchange regime and critical residues involved in the protein-protein interaction were identified. Using NMR spectroscopy and docking studies, the epitopes of MtMrx-1 and MtAhpE interaction are described, shedding new light into the interaction interface and mechanism of action. Finally, the essential residue of MtMrx-1 identified in the interaction with MtMtr and MtAhpE form a platform for structure-guided drug design against the versatile enzyme machinery of the mycothiol-dependent system inside M. tuberculosis.
分枝杆菌利用多功能的分枝菌硫醇依赖系统机制,其中包含分枝菌硫醇二硫化物还原酶(Mtr)、氧化还原酶 Myoredoxin-1(Mrx-1)和烷基氢过氧化物亚基 E(AhpE)。分枝菌硫醇依赖蛋白复合物调节氧化还原型分枝菌硫醇的平衡,以确保在暴露于氧化应激时,其蛋白能够保持最佳的还原细胞内环境。在这里,我们通过小角度 X 射线散射数据确定了第一个来自结核分枝杆菌 Mtr(MtMtr)的低分辨率溶液结构,该结构提供了其二聚体状态的深入了解。溶液形状揭示了二聚体 MtMtr 中两个 NADPH 结合域的不同构象。NMR 滴定表明,MtMtr-MtMrx-1 相互作用的特征是快速交换状态,并确定了参与蛋白-蛋白相互作用的关键残基。通过 NMR 光谱和对接研究,描述了 MtMrx-1 和 MtAhpE 相互作用的表位,为相互作用界面和作用机制提供了新的认识。最后,在与 MtMtr 和 MtAhpE 的相互作用中确定的 MtMrx-1 的必需残基为针对结核分枝杆菌内分枝菌硫醇依赖系统的多功能酶机制的基于结构的药物设计提供了一个平台。