Department of Medicinal Chemistry, College of Pharmacy, University of Minnesota, Minneapolis, Minnesota 55414, United States.
Department of Chemistry & Biochemistry, University of Oklahoma, Stephenson Life Sciences Research Center, Norman, Oklahoma 73019, United States.
J Med Chem. 2022 Oct 27;65(20):14144-14179. doi: 10.1021/acs.jmedchem.2c01349. Epub 2022 Oct 18.
The clinical success of linezolid for treating Gram-positive infections paired with the high conservation of bacterial ribosomes predicts that if oxazolidinones were engineered to accumulate in Gram-negative bacteria, then this pharmacological class would find broad utility in eradicating infections. Here, we report an investigative study of a strategically designed library of oxazolidinones to determine the effects of molecular structure on accumulation and biological activity. , , and strains with varying degrees of compromise (in efflux and outer membrane) were used to identify motifs that hinder permeation across the outer membrane and/or enhance efflux susceptibility broadly and specifically between species. The results illustrate that small changes in molecular structure are enough to overcome the efflux and/or permeation issues of this scaffold. Three oxazolidinone analogues (, , and ) were identified that exhibit activity against all three pathogens assessed, a biological profile not observed for linezolid.
利奈唑胺治疗革兰氏阳性感染的临床疗效显著,且细菌核糖体高度保守,这预示着如果噁唑烷酮类药物被设计成在革兰氏阴性菌中积累,那么这类药物将在消除感染方面具有广泛的用途。在这里,我们报告了一项针对噁唑烷酮类药物的经过精心设计的文库的研究,以确定分子结构对积累和生物活性的影响。使用具有不同外排和外膜功能缺陷程度的 和 菌株来鉴定阻碍外膜渗透和/或在种间广泛且特异性地增强外排易感性的结构基序。结果表明,分子结构的微小变化足以克服该支架的外排和/或渗透问题。鉴定出三种噁唑烷酮类似物( 、 和 )对所有三种评估的病原体均具有活性,这是利奈唑胺所没有观察到的生物学特征。