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Structure–Activity Relationship of the Diaminobutyric Acid Residues in Polymyxins

多粘菌素 侧链 化学 抗菌活性 三肽 抗菌剂 细菌 多粘菌素B 细菌外膜 残留物(化学) 结构-活动关系 生物化学 组合化学 立体化学 副作用(计算机科学) 二肽 致病菌 抗菌剂 抗生素 抗菌肽 氨基酸
作者
Wendong Ma,Xukai Jiang,Kaijie Mu,Sixin Tian,Heidi H. Yu,Hasini Wickremasinghe,Tony Velkov,Kade D. Roberts,Nitin A. Patil,Jian Li
出处
期刊:JACS Au [American Chemical Society]
卷期号:5 (10): 4714-4727 被引量:1
标识
DOI:10.1021/jacsau.5c00587
摘要

High Resolution Image Download MS PowerPoint Slide Multidrug-resistant Gram-negative bacteria have caused a serious threat to global health, and polymyxins are an important last-line therapy. As resistance to polymyxins is emerging, understanding the structure–activity relationship (SAR) of the polymyxins can facilitate the discovery of novel antimicrobial lipopeptides with improved antibacterial activity. However, l -2,4-diaminobutyric acid (Dab) is a key amino acid for the antibacterial activity of polymyxins, and the SAR of five Dab residues has not been well studied. Here, we employed an all-atom molecular dynamics simulation approach by integrating a lipidomics-informed outer membrane (OM)-based model and systematically investigated the SAR of the five Dab residues, specifically the length of their side chains. The impact of the length of the Dab side chain on three activity-related aspects, namely, the conformation of polymyxins, OM penetration ability, and membrane deformation, was systematically examined at the atomic level and compared with in vitro antimicrobial activity results. We uncovered that altering the side chain length of the Dab residues at different positions significantly affected the antibacterial activity via distinct mechanisms. Longer side chains of Dab residues in the linear tripeptide segment (Dab 1 and Dab 3 ) and shorter side chains in the heptapeptide ring (Dab 5, Dab 8, and Dab 9 ) resulted in marked changes in OM deformation. Importantly, polymyxin activity is governed by the interplay of multiple structural and functional factors. Our mechanism-based SAR model predicted how these position-specific modifications in Dab side chains modulate polymyxin activity, as supported by experimental validation. Specifically, elongation of the Dab 1 and Dab 5 side chains led to significantly reduced antibacterial activity, while shortening of the Dab 3 side chain enhanced activity. Collectively, the atomic-level SAR of polymyxins centered on the Dab residues will help expedite the rational design of new-generation antimicrobial lipopeptides, and our transferable framework provides broad implications for advancing membrane-active therapeutic agents.
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