Pergolizzi Giulia, Cominetti Marco M D, Butt Julea N, Field Robert A, Bowater Richard P, Wagner Gerd K
School of Pharmacy, University of East Anglia, Norwich Research Park, Norwich, NR4 7TJ, UK.
Org Biomol Chem. 2015 Jun 14;13(22):6380-98. doi: 10.1039/c5ob00294j.
We report the chemical synthesis and conformational analysis of a collection of 2-, 6- and 8-substituted derivatives of β-NAD(+) and AMP, and their biochemical evaluation against NAD(+)-dependent DNA ligases from Escherichia coli and Mycobacterium tuberculosis. Bacterial DNA ligases are validated anti-microbial targets, and new strategies for their inhibition are therefore of considerable scientific and practical interest. Our study includes several pairs of β-NAD(+) and AMP derivatives with the same substitution pattern at the adenine base. This has enabled the first direct comparison of co-substrate and inhibitor behaviour against bacterial DNA ligases. Our results suggest that an additional substituent in position 6 or 8 of the adenine base in β-NAD(+) is detrimental for activity as either co-substrate or inhibitor. In contrast, substituents in position 2 are not only tolerated, but appear to give rise to a new mode of inhibition, which targets the conformational changes these DNA ligases undergo during catalysis. Using a molecular modelling approach, we highlight that these findings have important implications for our understanding of ligase mechanism and inhibition, and may provide a promising starting point for the rational design of a new class of inhibitors against NAD(+)-dependent DNA ligases.
我们报告了一系列β-NAD(+)和AMP的2-、6-和8-取代衍生物的化学合成及构象分析,以及它们针对来自大肠杆菌和结核分枝杆菌的NAD(+)依赖性DNA连接酶的生化评估。细菌DNA连接酶是经过验证的抗菌靶点,因此针对它们的抑制新策略具有相当大的科学和实际意义。我们的研究包括几对在腺嘌呤碱基处具有相同取代模式的β-NAD(+)和AMP衍生物。这使得首次能够直接比较共底物和抑制剂对细菌DNA连接酶的作用。我们的结果表明,β-NAD(+)中腺嘌呤碱基6位或8位的额外取代基对作为共底物或抑制剂的活性是有害的。相比之下,2位的取代基不仅可以耐受,而且似乎会产生一种新的抑制模式,该模式针对这些DNA连接酶在催化过程中发生的构象变化。使用分子建模方法,我们强调这些发现对我们理解连接酶机制和抑制具有重要意义,并可能为合理设计一类针对NAD(+)依赖性DNA连接酶的新型抑制剂提供一个有前景的起点。