Homerton College, University of Cambridge, Cambridge CB2 8PH, UK.
Department of Medicine, Cambridge University, Level 5, Addenbrookes' Hospital (Box 157), Cambridge CB2 0QQ, UK.
Viruses. 2021 Oct 22;13(11):2130. doi: 10.3390/v13112130.
Our understanding of RNA structure has lagged behind that of proteins and most other biological polymers, largely because of its ability to adopt multiple, and often very different, functional conformations within a single molecule. Flexibility and multifunctionality appear to be its hallmarks. Conventional biochemical and biophysical techniques all have limitations in solving RNA structure and to address this in recent years we have seen the emergence of a wide diversity of techniques applied to RNA structural analysis and an accompanying appreciation of its ubiquity and versatility. Viral RNA is a particularly productive area to study in that this economy of function within a single molecule admirably suits the minimalist lifestyle of viruses. Here, we review the major techniques that are being used to elucidate RNA conformational flexibility and exemplify how the structure and function are, as in all biology, tightly linked.
我们对 RNA 结构的理解落后于对蛋白质和大多数其他生物聚合物的理解,这主要是因为 RNA 能够在单个分子内采用多种、且常常非常不同的功能构象。灵活性和多功能性似乎是其特点。传统的生化和生物物理技术在解决 RNA 结构方面都有其局限性,近年来,我们看到了各种技术应用于 RNA 结构分析,并相应地认识到了 RNA 的普遍性和多功能性。病毒 RNA 是一个特别适合研究的领域,因为这种在单个分子内的功能经济性非常适合病毒的极简主义生活方式。在这里,我们回顾了用于阐明 RNA 构象灵活性的主要技术,并举例说明了结构和功能之间的紧密联系,就像在所有生物学中一样。