Villain Paul, Basta Tamara
Medical Research Council Laboratory of Medical Sciences, London, UK.
Institute of Clinical Sciences, Faculty of Medicine, Imperial College London, London, UK.
Mol Microbiol. 2025 Mar;123(3):245-264. doi: 10.1111/mmi.15328. Epub 2024 Dec 22.
DNA topology is a direct consequence of the double helical nature of DNA and is defined by how the two complementary DNA strands are intertwined. Virtually every reaction involving DNA is influenced by DNA topology or has topological effects. It is therefore of fundamental importance to understand how this phenomenon is controlled in living cells. DNA topoisomerases are the key actors dedicated to the regulation of DNA topology in cells from all domains of life. While significant progress has been made in the last two decades in understanding how these enzymes operate in vivo in Bacteria and Eukaryotes, studies in Archaea have been lagging behind. This review article aims to summarize what is currently known about DNA topology regulation by DNA topoisomerases in main archaeal model organisms. These model archaea exhibit markedly different lifestyles, genome organization and topoisomerase content, thus highlighting the diversity and the complexity of DNA topology regulation mechanisms and their evolution in this domain of life. The recent development of functional genomic assays supported by next-generation sequencing now allows to delve deeper into this timely and exciting, yet still understudied topic.
DNA拓扑结构是DNA双螺旋结构的直接结果,由两条互补DNA链的缠绕方式定义。几乎每一个涉及DNA的反应都受DNA拓扑结构的影响或具有拓扑效应。因此,了解这种现象在活细胞中是如何被控制的至关重要。DNA拓扑异构酶是负责调节生命各领域细胞中DNA拓扑结构的关键因素。尽管在过去二十年里,在了解这些酶在细菌和真核生物体内如何发挥作用方面取得了重大进展,但古菌方面的研究一直滞后。这篇综述文章旨在总结目前关于主要古菌模式生物中DNA拓扑异构酶对DNA拓扑结构调节的已知情况。这些模式古菌展现出明显不同的生活方式、基因组组织和拓扑异构酶含量,从而凸显了DNA拓扑结构调节机制在这一生命领域中的多样性、复杂性及其进化。由下一代测序技术支持的功能基因组分析的最新进展,现在使我们能够更深入地探究这个及时且令人兴奋但仍未得到充分研究的课题。