抗菌剂
细菌
分子动力学
流出
化学
内化
膜
生物物理学
膜完整性
单体
药品
计算生物学
抗菌肽
抗生素耐药性
细胞膜
微生物学
抗药性
抗菌剂
动力学(音乐)
纳米颗粒
生物系统
组合化学
合理设计
细菌细胞结构
生物
纳米技术
单链
分子模型
抗菌活性
细菌外膜
药物开发
细胞生物学
烷基
结构完整性
结构-活动关系
作者
Lei Hao,Yeonho Song,C. Jielin Zhang,Yufei Wang,Haoying Ge,Wen Sun,Jingyun Wang,Jun Soo Kim,Xiaojun Peng,Juyoung Yoon,Haidong Li
摘要
Abstract Antimicrobial resistance has become a major threat to human health, particularly for Gram‐negative bacteria such as Acinetobacter baumannii and Klebsiella pneumoniae . Disruption of membrane integrity is regarded as a promising antimicrobial strategy that does not induce distinct drug resistance, while increasing the internalization of drug doses and mitigating efflux mechanisms. In this study, relying on molecular dynamics (MD) simulations to optimize and confirm the membrane‐disrupting activity of photodrugs, we fabricated a series of monomeric (TC n ) and dimeric (TC n T) photodrugs ( n = 4, 8, 12, and 16), with different alkyl chain lengths, enabling their differing bacterial membrane rupture capabilities of inherent. Notably, based on MD simulations and in vitro experiments, TC 8 T exhibited enhanced antibacterial efficacy against multiple drug‐resistant Gram‐negative strains upon white light irradiation, including clinically difficult‐to‐treat strains. More importantly, TC 8 T demonstrated robust antimicrobial activity and promoted tissue reconstruction in murine models of wound infection and post‐tumor‐resection mixed infections.
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