“Bacterial Suicide”: An Aminal-Linked Covalent Organic Polymer with Infection-Microenvironment-Enhanced Synergistic Photothermal and Enzymatic Activities for Wound Therapy

光热治疗 氨基 共价键 化学 聚合物 微生物学 纳米技术 材料科学 生物化学 生物 有机化学
作者
Yuying Wang,Jibin Wang,Xiaoyan Ding,Xinjun Yu,Yudan Zhao,Zhengxuan Pan,Longwu Xu,W Cheng,Meng Ji,Chan’e Yuan,Tao Wang,Baolong Zhou
出处
期刊:ACS applied polymer materials [American Chemical Society]
卷期号:6 (22): 13764-13774
标识
DOI:10.1021/acsapm.4c02607
摘要

The infected microenvironment provides fertile ground for bacterial growth and the progression of inflammation, making it challenging to cure related diseases. Here, a covalent organic polymer (COP)-based antibacterial agent, denoted as PF-COP, was developed. PF-COP has intrinsic photothermal capacity, which allows it to take advantage of the infected microenvironment for enhanced synergistic wound infection therapy. PF-COP was prepared via the copolymerization of piperazine with ferrocene diformaldehyde using catalyst-free aminal chemistry, in which the piperazine units could easily bind with acid to generate the cationic skeleton, while the ferrocene components could convert the endogenous H2O2 into a toxic hydroxyl radical. This effectively regulates the infection of the microenvironment. The acidified positively charged structures could enhance material adhesion with bacterial cell membranes and improve photothermal responsiveness, significantly improving the therapeutic effect. As a result, PF-COP amalgamating photothermal and enzyme catalytic capacities could serve as an infection microenvironment-enhanced therapeutic agent. It could disrupt the balance of the infection microenvironment, destroying the optimal growth environment for bacteria and inducing "bacterial suicide", and regulate the microenvironment to promote the growth of normal cells, thus accelerating the wound healing. Therefore, this work presents a promising construction strategy for the precise development of COP-based therapeutics facilitating wound healing through direct infectious microenvironment utilization and regulation.

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