Das Gourav, Harikrishna S, Gore Kiran R
Department of Chemistry, Indian Institute of Technology Kharagpur, Kharagpur, West Bengal-721302, India.
Department of Chemistry and Center for Structural Biology, Vanderbilt University, Nashville, TN 37240, USA.
Chem Rec. 2022 Dec;22(12):e202200174. doi: 10.1002/tcr.202200174. Epub 2022 Sep 1.
Ribofuranose sugar conformation plays an important role in the structure and dynamics of functional nucleic acids such as siRNAs, AONs, aptamers, miRNAs, etc. To improve their therapeutic potential, several chemical modifications have been introduced into the sugar moiety over the years. The stability of the oligonucleotide duplexes as well as the formation of stable and functional protein-oligonucleotide complexes are dictated by the conformation and dynamics of the sugar moiety. In this review, we systematically categorise various ribofuranose sugar modifications employed in DNAs and RNAs so far. We discuss different stereoelectronic effects imparted by different substituents on the sugar ring and how these effects control sugar puckering. Using this data, it would be possible to predict the precise use of chemical modifications and design novel sugar-modified nucleosides for therapeutic oligonucleotides that can improve their physicochemical properties.
呋喃核糖的糖构象在功能性核酸(如小干扰RNA、反义寡核苷酸、适体、微小RNA等)的结构和动力学中起着重要作用。为了提高它们的治疗潜力,多年来已在糖部分引入了几种化学修饰。寡核苷酸双链体的稳定性以及稳定且功能性的蛋白质 - 寡核苷酸复合物的形成取决于糖部分的构象和动力学。在本综述中,我们系统地对迄今为止在DNA和RNA中使用的各种呋喃核糖修饰进行了分类。我们讨论了糖环上不同取代基赋予的不同立体电子效应,以及这些效应如何控制糖的折叠。利用这些数据,有可能预测化学修饰的精确用途,并设计新型的糖修饰核苷用于治疗性寡核苷酸,从而改善其物理化学性质。