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Mycobacterium tuberculosis DinG Is a Structure-specific Helicase That Unwinds G4 DNA

机译:结核分枝杆菌DinG是一种解构G4 DNA的结构特异性解旋酶

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摘要

The significance of G-quadruplexes and the helicases that resolve G4 structures in prokaryotes is poorly understood. The Mycobacterium tuberculosis genome is GC-rich and contains >10,000 sequences that have the potential to form G4 structures. In Escherichia coli, RecQ helicase unwinds G4 structures. However, RecQ is absent in M. tuberculosis, and the helicase that participates in G4 resolution in M. tuberculosis is obscure. Here, we show that M. tuberculosis DinG (MtDinG) exhibits high affinity for ssDNA and ssDNA translocation with a 5′ → 3′ polarity. Interestingly, MtDinG unwinds overhangs, flap structures, and forked duplexes but fails to unwind linear duplex DNA. Our data with DNase I footprinting provide mechanistic insights and suggest that MtDinG is a 5′ → 3′ polarity helicase. Notably, in contrast to E. coli DinG, MtDinG catalyzes unwinding of replication fork and Holliday junction structures. Strikingly, we find that MtDinG resolves intermolecular G4 structures. These data suggest that MtDinG is a multifunctional structure-specific helicase that unwinds model structures of DNA replication, repair, and recombination as well as G4 structures. We finally demonstrate that promoter sequences of M. tuberculosis PE_PGRS2, mce1R, and moeB1 genes contain G4 structures, implying that G4 structures may regulate gene expression in M. tuberculosis. We discuss these data and implicate targeting G4 structures and DinG helicase in M. tuberculosis could be a novel therapeutic strategy for culminating the infection with this pathogen.
机译:人们对G-四链体和解析原核生物中G4结构的解旋酶的重要性了解甚少。结核分枝杆菌基因组富含GC,并且包含10,000多个可能形成G4结构的序列。在大肠杆菌中,RecQ解旋酶可解开G4结构。但是,结核分枝杆菌中不存在RecQ,参与结核分枝杆菌G4分解的解旋酶也不清楚。在这里,我们显示结核分枝杆菌DinG(MtDinG)对ssDNA和ssDNA易位性具有5'→3'极性的高亲和力。有趣的是,MtDinG可以展开悬垂,襟翼结构和叉状双链体,但无法解旋线性双链体DNA。我们带有DNase I足迹的数据提供了机械方面的见解,并表明MtDinG是5'→3'极性解旋酶。值得注意的是,与大肠杆菌DinG相反,MtDinG催化复制叉和霍利迪连接结构的展开。令人惊讶的是,我们发现MtDinG解析分子间G4结构。这些数据表明,MtDinG是一种多功能的结构特异性解旋酶,可解开DNA复制,修复和重组的模型结构以及G4结构。我们最终证明了结核分枝杆菌PE_PGRS2,mce1R和moeB1基因的启动子序列含有G4结构,这暗示着G4结构可能调节结核分枝杆菌中的基因表达。我们讨论这些数据,并暗示针对结核分枝杆菌的G4结构和DinG解旋酶可能是最终用这种病原体感染的新治疗策略。

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