Department of Microbiology-Immunology, Northwestern University Feinberg School of Medicine, Chicago, Illinois 60611, USA; email:
Annu Rev Microbiol. 2018 Sep 8;72:49-69. doi: 10.1146/annurev-micro-090817-062629. Epub 2018 May 31.
Advances in understanding mechanisms of nucleic acids have revolutionized molecular biology and medicine, but understanding of nontraditional nucleic acid conformations is less developed. The guanine quadruplex (G4) alternative DNA structure was first described in the 1960s, but the existence of G4 structures (G4-S) and their participation in myriads of biological functions are still underappreciated. Despite many tools to study G4s and many examples of roles for G4s in eukaryotic molecular processes and issues with uncontrolled G4-S formation, there is relatively little knowledge about the roles of G4-S in viral or prokaryotic systems. This review summarizes the state of the art with regard to G4-S in eukaryotes and their potential roles in human disease before discussing the evidence that G4-S have equivalent importance in affecting viral and bacterial life.
对核酸机制的认识的进步彻底改变了分子生物学和医学,但对非传统核酸构象的认识还不够发达。鸟嘌呤四链体 (G4) 是一种替代 DNA 结构,于 20 世纪 60 年代首次被描述,但 G4 结构 (G4-S) 的存在及其在无数生物功能中的参与仍然未被充分认识。尽管有许多研究 G4 的工具,并且有许多 G4 在真核分子过程中的作用的例子以及与不受控制的 G4-S 形成有关的问题,但关于 G4-S 在病毒或原核系统中的作用的知识相对较少。本文总结了 G4-S 在真核生物中的最新研究进展及其在人类疾病中的潜在作用,然后讨论了 G4-S 在影响病毒和细菌生命方面具有同等重要性的证据。