细菌
生物膜
细菌外膜
异源的
细菌细胞结构
小泡
生物
细胞生物学
微生物学
化学
合成生物学
生物物理学
膜
生物化学
大肠杆菌
基因
计算生物学
遗传学
作者
Zilin Zhou,Li‐Zhong Sun,Yuanyuan Tu,Yingming Yang,Ailin Hou,Jiyao Li,Jun Luo,Lei Cheng,Jianshu Li,Kunneng Liang,Jiaojiao Yang
标识
DOI:10.1002/advs.202405764
摘要
Abstract In treating infectious diseases, achieving selective bacterial inhibition is crucial for preserving the microecological equilibrium. The current approaches predominantly rely on synthetic materials tailored to specific bacteria, considering their cell walls or oxygen requirements. Herein, inspired by intricate bacterial communication, a natural implant is proposed coating utilizing bacterial outer membrane vesicles (OMVs), essential components in bacterial signaling, integrated onto diverse implant surfaces through a universal poly (tannic acid) bridging layer. This coating is homogenous and stable, unexpectedly promoting the proliferation of parental bacteria while inhibiting heterologous bacteria both in vitro and in vivo. Through high‐throughput sequencing and bioinformatics analysis, the selective bacteriostatic ability arises from OMVs, upregulating anti‐oxidative stress genes in heterologous bacteria and activating biofilm‐related genes in parental bacteria. This study positions OMVs as an appealing biomaterial for selective bacterial inhibition through a biological approach, showcasing their potential in regulating the microecological balance through a natural interface modification strategy.
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