Department of Microbiology and Cell Biology, Indian Institute of Science, Bangalore 560012, India.
Department of Microbiology and Cell Biology, Indian Institute of Science, Bangalore 560012, India; Jawaharlal Nehru Centre for Advanced Scientific Research, Bangalore 560064, India.
J Mol Biol. 2020 Sep 18;432(20):5614-5631. doi: 10.1016/j.jmb.2020.08.012. Epub 2020 Aug 17.
Topoisomerases maintain topological homeostasis of bacterial chromosomes by catalysing changes in DNA linking number. The resolution of RNA entanglements occurring in the cell would also require catalytic action of topoisomerases. We describe RNA topoisomerase and hydrolysis activities in DNA topoisomerase I (topo I) from mycobacteria. The interaction of topo I with mRNA, tRNA and rRNA suggested its role in some aspect of RNA metabolism; the enzyme participates in rRNA maturation via its RNA hydrolysis activity. Accumulation of rRNA precursors in a topo I knockdown strain and the rescue of rRNA processing deficiency in RNaseE knockdown cells by topo I expression indicated the enzyme's back-up support to RNases involved in rRNA processing. We demonstrate that the active-site tyrosine of the enzyme mediates catalytic reactions with both DNA/RNA substrates, and RNA topoisomerase activity can follow two reaction paths in contrast to its DNA topoisomerase activity. Mutation in the canonical proton relay pathway impacts DNA topoisomerase activity whilst retaining activity on RNA substrates. The mycobacterial topo I thus exemplifies the resourcefulness and parsimony of biological catalysis in harnessing the limited chemical repertoire at its disposal to find common solutions to mechanistically related challenges of phosphodiester breakage/exchange reactions in DNA and RNA that are essential for cell survival.
拓扑异构酶通过催化 DNA 连接数的变化来维持细菌染色体的拓扑同型。细胞中发生的 RNA 缠绕的解决也需要拓扑异构酶的催化作用。我们描述了分枝杆菌 DNA 拓扑异构酶 I(topo I)的 RNA 拓扑异构酶和水解活性。topo I 与 mRNA、tRNA 和 rRNA 的相互作用表明其在 RNA 代谢的某些方面发挥作用;该酶通过其 RNA 水解活性参与 rRNA 成熟。在 topo I 敲低菌株中 rRNA 前体的积累,以及在 RNaseE 敲低细胞中通过 topo I 表达拯救 rRNA 加工缺陷,表明该酶对参与 rRNA 加工的 RNase 提供后备支持。我们证明该酶的活性位点酪氨酸介导与 DNA/RNA 底物的催化反应,并且 RNA 拓扑异构酶活性可以遵循两种反应途径,而与其 DNA 拓扑异构酶活性相反。在经典质子传递途径中的突变会影响 DNA 拓扑异构酶活性,同时保留对 RNA 底物的活性。因此,分枝杆菌 topo I 例证了生物催化在利用其可用的有限化学库来寻找解决 DNA 和 RNA 中磷酸二酯键断裂/交换反应的机制相关挑战的共同解决方案方面的机智和简约性,这些反应对于细胞存活至关重要。