生物膜
生物污染
胞外聚合物
纳米技术
化学
细胞外基质
纳米机器人学
生物相容性材料
微生物学
渗透(战争)
纺纱
细菌
抗生素
材料科学
慢性伤口
生物物理学
抗生素治疗
细胞外
生物相容性
纳米纤维
细胞毒性
排序酶A
作者
Wenli Wu,Shiying Hou,Yang Su,Xuehua Ma,Tianxiang Chen,Changyong Gao,A M Wu
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-06-01
卷期号:20 (23): 16930-16942
标识
DOI:10.1021/acsnano.6c03749
摘要
A major challenge in biofilm-associated infection therapy is overcoming biofilm barriers while eradicating embedded bacteria without inducing antibiotic resistance. Here, we report an antibiotic-free microbotic platform that synergistically integrates magnetomechanical biofilm disruption with localized nanozyme-mediated bactericidal activity, enabling efficient and biocompatible biofilm eradication in vivo. Under a rotating magnetic field, nanozyme microbots transition from individual spinning to reconfigurable vortex swarming, generating strong local fluid shear forces that mechanically disrupt the extracellular polymeric substance matrix and drive deep penetration into biofilms. Within the disrupted biofilm, the Fe 3 O 4 nanozyme cores catalyze endogenous H 2 O 2 to produce bactericidal hydroxyl radicals, resulting in effective elimination of both Gram-positive and Gram-negative bacteria. In murine biofilm infection models, the nanozyme microbots significantly reduce the bacterial burden, accelerate wound closure, suppress inflammation, and promote angiogenesis. This work establishes a mechanochemical microbotic strategy that combines programmable swarm dynamics with nanozyme catalysis, providing a promising antibiotic-independent approach to treating chronic biofilm-associated infections.
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