纳米技术
纳米颗粒
生物膜
催化作用
材料科学
模板
微流控
化学
生物
细菌
遗传学
生物化学
作者
Hong Huy Tran,Nadasinee Jaruchotiratanasakul,Zhenting Xiang,Nil Kanatha Pandey,Min Jun Oh,Yuan Liu,Zhi Ren,Alaa Babeer,Michael J. Zdilla,David P. Cormode,Bekir Karabucak,Daeyeon Lee,Edward B. Steager,Hyun Koo
标识
DOI:10.1002/adhm.202402306
摘要
Bacterial infections in irregular and branched confinements pose significant therapeutic challenges. Despite their high antimicrobial efficacy, enzyme-mimicking nanoparticles (nanozymes) face difficulties in achieving localized catalysis at distant infection sites within confined spaces. Incorporating nanozymes into microrobots enables the delivery of catalytic agents to hard-to-reach areas, but poor nanoparticle dispersibility and distribution during fabrication hinder their catalytic performance. To address these challenges, a nanozyme-shelled microrobotic platform is introduced using magnetic microcapsules with collective and adaptive mobility for automated navigation and localized catalysis within complex confinements. Using double emulsions produced from microfluidics as templates, iron oxide and silica nanoparticles are assembled into 100-µm microcapsules, which self-organize into multi-unit, millimeter-size assemblies under rotating magnetic fields. These microcapsules exhibit high peroxidase-like activity, efficiently catalyzing hydrogen peroxide to generate reactive oxygen species (ROS). Notably, microcapsule assemblies display remarkable collective navigation within arched and branched confinements, reaching the targeted apical regions of the tooth canal with high accuracy. Furthermore, these nanozyme-shelled microrobots perform rapid catalysis in situ and effectively kill biofilms on contact via ROS generation, enabling localized antibiofilm action. This study demonstrates a facile method of integrating nanozymes onto a versatile microrobotic platform to address current needs for targeted therapeutic catalysis in complex and confined microenvironments.
科研通智能强力驱动
Strongly Powered by AbleSci AI