Ahmed Wareed, Menon Shruti, Karthik Pullela V D N B, Nagaraja Valakunja
Department of Microbiology and Cell Biology, Indian Institute of Science, Bangalore, India.
Department of Microbiology and Cell Biology, Indian Institute of Science, Bangalore, India Jawaharlal Nehru Centre for Advanced Scientific Research, Bangalore, India
Nucleic Acids Res. 2016 Feb 29;44(4):1541-52. doi: 10.1093/nar/gkv1088. Epub 2015 Oct 22.
The opposing catalytic activities of topoisomerase I (TopoI/relaxase) and DNA gyrase (supercoiling enzyme) ensure homeostatic maintenance of bacterial chromosome supercoiling. Earlier studies in Escherichia coli suggested that the alteration in DNA supercoiling affects the DNA gyrase and TopoI expression. Although, the role of DNA elements around the promoters were proposed in regulation of gyrase, the molecular mechanism of supercoiling mediated control of TopoI expression is not yet understood. Here, we describe the regulation of TopoI expression from Mycobacterium tuberculosis and Mycobacterium smegmatis by a mechanism termed Supercoiling Sensitive Transcription (SST). In both the organisms, topoI promoter(s) exhibited reduced activity in response to chromosome relaxation suggesting that SST is intrinsic to topoI promoter(s). We elucidate the role of promoter architecture and high transcriptional activity of upstream genes in topoI regulation. Analysis of the promoter(s) revealed the presence of sub-optimal spacing between the -35 and -10 elements, rendering them supercoiling sensitive. Accordingly, upon chromosome relaxation, RNA polymerase occupancy was decreased on the topoI promoter region implicating the role of DNA topology in SST of topoI. We propose that negative supercoiling induced DNA twisting/writhing align the -35 and -10 elements to facilitate the optimal transcription of topoI.
拓扑异构酶I(TopoI/解旋酶)和DNA促旋酶(超螺旋酶)相反的催化活性确保了细菌染色体超螺旋的稳态维持。早期对大肠杆菌的研究表明,DNA超螺旋的改变会影响DNA促旋酶和TopoI的表达。尽管有人提出启动子周围的DNA元件在促旋酶的调控中起作用,但超螺旋介导的TopoI表达调控的分子机制尚未明确。在此,我们描述了一种称为超螺旋敏感转录(SST)的机制对结核分枝杆菌和耻垢分枝杆菌中TopoI表达的调控。在这两种生物体中,topoI启动子在染色体松弛时活性降低,这表明SST是topoI启动子所固有的。我们阐明了启动子结构和上游基因的高转录活性在topoI调控中的作用。对启动子的分析揭示了-35和-10元件之间存在次优间距,使其对超螺旋敏感。因此,在染色体松弛时,RNA聚合酶在topoI启动子区域的占据减少,这暗示了DNA拓扑结构在topoI的SST中的作用。我们提出,负超螺旋诱导的DNA扭曲/缠绕使-35和-10元件对齐,以促进topoI的最佳转录。