Department of Chemistry, McGill University , 801 Sherbrooke Street West, Montreal, Quebec H3A 0B8, Canada.
J Am Chem Soc. 2017 Oct 4;139(39):13620-13623. doi: 10.1021/jacs.7b07436. Epub 2017 Sep 25.
Sugar puckering of nucleosides impacts nucleic acid structures; hence their biological function. Similarly, nucleoside-based therapeutics may adopt different conformations affecting their binding affinity, DNA incorporation, and excision rates. As a result, significant efforts have been made to develop nucleoside analogues adopting specific conformations to improve bioactivity and pharmacokinetic profiles of the corresponding nucleoside-containing drugs. Understanding and ultimately predicting these conformational preferences would significantly help in the design of more effective structures. We report herein a computational study based on hybrid QM/MM umbrella sampling simulations that allow the accurate prediction of the sugar conformational preferences of chemically modified nucleosides in solution. Moreover, we pair these simulations with natural bond orbital (NBO) analysis to gain key insights into the role of substituents in the conformational preferences of these nucleosides.
糖基化对核苷的结构有影响;因此,它们的生物功能也受到影响。同样,基于核苷的治疗药物可能会采用不同的构象,从而影响它们的结合亲和力、DNA 掺入和切除率。因此,人们已经做出了巨大的努力来开发采用特定构象的核苷类似物,以提高相应含核苷药物的生物活性和药代动力学特性。了解并最终预测这些构象偏好将极大地有助于设计更有效的结构。我们在此报告了一项基于混合量子力学/分子力学伞状采样模拟的计算研究,该研究能够准确预测化学修饰核苷在溶液中的糖构象偏好。此外,我们将这些模拟与自然键轨道(NBO)分析相结合,深入了解取代基在这些核苷构象偏好中的作用。