化学
纳米材料基催化剂
生物正交化学
生物膜
生物相容性
聚合物
阳离子聚合
组合化学
纳米技术
有机化学
细菌
催化作用
点击化学
遗传学
生物
材料科学
作者
Rui Huang,Cheng‐Hsuan Li,Roberto Cao‐Milán,Luke D. He,Jessa Marie Makabenta,Xianzhi Zhang,Erlei Yu,Vincent M. Rotello
摘要
Bioorthogonal catalysis offers a unique strategy to modulate biological processes through the in situ generation of therapeutic agents. However, the direct application of bioorthogonal transition metal catalysts (TMCs) in complex media poses numerous challenges due to issues of limited biocompatibility, poor water solubility, and catalyst deactivation in biological environments. We report here the creation of catalytic "polyzymes", comprised of self-assembled polymer nanoparticles engineered to encapsulate lipophilic TMCs. The incorporation of catalysts into these nanoparticle scaffolds creates water-soluble constructs that provide a protective environment for the catalyst. The potential therapeutic utility of these nanozymes was demonstrated through antimicrobial studies in which a cationic nanozyme was able to penetrate into biofilms and eradicate embedded bacteria through the bioorthogonal activation of a pro-antibiotic.
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