抗菌活性
阳离子聚合
金黄色葡萄球菌
化学
磷脂酰甘油
细菌
合理设计
组合化学
烷基
选择性
聚合物
抗菌剂
膜
结构-活动关系
微生物学
有机化学
蛋白质三级结构
体外
细菌细胞结构
生物膜
合成膜
立体化学
细胞膜
生物化学
作者
Pengqi Wan,Ting Hua,Xingjun Zhao,Ming-Xiao Deng,Li Chen,Chunsheng Xiao,Xuesi Chen,Pengqi Wan,Ting Hua,Xingjun Zhao,Ming-Xiao Deng,Li Chen,Chunsheng Xiao,Xuesi Chen
标识
DOI:10.1016/j.bioactmat.2025.11.017
摘要
Tertiary alkylamines serve as privileged structural motifs ubiquitously distributed across natural products, pharmaceutical agents, and bioactive molecules. However, their application in the design of antibacterial polymers has not been extensively explored. Here, a series of cationic polyaspartamides (PASP-n) with different tertiary alkylamine pendants were synthesized and screened for combatting methicillin-resistant Staphylococcus aureus (MRSA) induced infections. Among all the synthesized PASP-n, the polymer bearing N, N-dibutylamine groups (PASP-4) exhibited the best antibacterial activity and the highest selectivity (>640 and > 160 for S. aureus and E. coli, respectively). The mechanistic study revealed that, due to the relative longer alkyl chain, PASP-4 could effectively bind with bacteria-specific anionic phosphatidylglycerol (POPG), thereby destroying the integrity of the bacterial membrane and resulting in the leakage of cytoplasmic components (e.g., ATP, DNA, and K+). Owing to this membrane disrupting ability, PASP-4 showed rapid bacterial killing kinetics without developing bacteria resistance after repeated treatments over 28 generations. Furthermore, PASP-4 demonstrated significant therapeutic potential in both local and systemic MRSA infections. Overall, this study proposes a viable strategy for the rational design of antibacterial polymers based on tertiary alkylamine structures.
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