脂质Ⅱ
超分子化学
变构调节
肽
细胞壁
细菌细胞结构
化学
细胞生物学
钙
抗菌肽
细胞膜
生物物理学
生物化学
细胞
脂质双层
膜
细菌
生物
酶
结晶学
肽聚糖
有机化学
遗传学
晶体结构
作者
Shehrazade Jekhmane,Maik G. N. Derks,Sourav Maity,Cornelis J. Slingerland,Kamaleddin H. M. E. Tehrani,João Medeiros‐Silva,Vicky Charitou,Danique Ammerlaan,Céline Fetz,Naomi Anna Consoli,Rachel V. K. Cochrane,Eilidh J. Matheson,M. van der Weijde,Barend O. W. Elenbaas,Francesca Lavore,Ruud C. Cox,Joseph H. Lorent,Marc Baldus,Markus Künzler,Moreno Lelli
标识
DOI:10.1038/s41564-024-01696-9
摘要
Antimicrobial resistance is a leading cause of mortality, calling for the development of new antibiotics. The fungal antibiotic plectasin is a eukaryotic host defence peptide that blocks bacterial cell wall synthesis. Here, using a combination of solid-state nuclear magnetic resonance, atomic force microscopy and activity assays, we show that plectasin uses a calcium-sensitive supramolecular killing mechanism. Efficient and selective binding of the target lipid II, a cell wall precursor with an irreplaceable pyrophosphate, is achieved by the oligomerization of plectasin into dense supra-structures that only form on bacterial membranes that comprise lipid II. Oligomerization and target binding of plectasin are interdependent and are enhanced by the coordination of calcium ions to plectasin's prominent anionic patch, causing allosteric changes that markedly improve the activity of the antibiotic. Structural knowledge of how host defence peptides impair cell wall synthesis will likely enable the development of superior drug candidates.
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