Department of Chemistry & Biochemistry, Clippinger Laboratory, Ohio University, Athens, OH 45701, USA.
Department of Chemistry & Biochemistry, Clippinger Laboratory, Ohio University, Athens, OH 45701, USA; Molecular & Cellular Biology Program, Ohio University, Athens, OH 45701, USA.
Bioorg Med Chem. 2020 Oct 15;28(20):115696. doi: 10.1016/j.bmc.2020.115696. Epub 2020 Aug 6.
Antibacterial drug resistance is a global health concern that requires multiple solution approaches including development of new antibacterial compounds acting at novel targets. Targeting regulatory RNA is an emerging area of drug discovery. The T-box riboswitch is a regulatory RNA mechanism that controls gene expression in Gram-positive bacteria and is an exceptional, novel target for antibacterial drug design. We report the design, synthesis and activity of a series of conformationally restricted oxazolidinone-triazole compounds targeting the highly conserved antiterminator RNA element of the T-box riboswitch. Computational binding energies correlated with experimentally-derived K values indicating the predictive capabilities for docking studies within this series of compounds. The conformationally restricted compounds specifically inhibited T-box riboswitch function and not overall transcription. Complex disruption, computational docking and RNA binding specificity data indicate that inhibition may result from ligand binding to an allosteric site. These results highlight the importance of both ligand affinity and RNA conformational outcome for targeted RNA drug design.
抗菌药物耐药性是一个全球性的健康问题,需要多种解决方案,包括开发针对新靶标的新型抗菌化合物。靶向调控 RNA 是药物发现的一个新兴领域。T 盒 RNA 是一种调控 RNA 机制,控制革兰氏阳性菌中的基因表达,是抗菌药物设计的一个独特的新型靶标。我们报告了一系列构象受限的噁唑烷酮-三唑化合物的设计、合成和活性,这些化合物针对 T 盒 RNA 中的高度保守的终止子 RNA 元件。计算结合能与实验得出的 K 值相关,表明在该系列化合物中对接研究具有预测能力。构象受限的化合物特异性抑制 T 盒 RNA 功能,而不是整体转录。复合物破坏、计算对接和 RNA 结合特异性数据表明,抑制可能是由于配体结合到变构位点。这些结果突出了针对靶向 RNA 药物设计的配体亲和力和 RNA 构象结果的重要性。