材料科学
纳米技术
涂层
催化作用
合理设计
纳米颗粒
共价键
多孔性
催化效率
表面改性
光催化
药物输送
设计要素和原则
翻译(生物学)
计算机科学
作者
Hyeonji Rha,Nem Singh,Amit Sharma,Jeseok Lee,Hongryeol Yun,Yunjie Xu,Chang Seop Hong,Kyoungsuk Jin,Jong Seung Kim
标识
DOI:10.1002/adhm.202504125
摘要
ABSTRACT The therapeutic promise of covalent organic frameworks (COFs) in phototheranostic applications has attracted significant attention due to their tunable porosity and design flexibility. However, their clinical translation remains limited by chemical instability and insufficient performance under physiological conditions. To address these issues, we adopted a post‐synthetic modification (PSM) strategy, coating SiO 2 nanoparticles with ultrathin COF layers through Schiff‐base condensation of TAPP and PDCA. This core–shell architecture provides stable and uniform particles while enabling precise incorporation of catalytic sites. As a result, the SiO 2 @COF platform markedly enhances photocatalytic NADH oxidation, with a turnover frequency (TOF) increase from 8.75 to 43.67 min −1 under normoxia and from 10.3 to 46.7 min −1 even under hypoxia, demonstrating its robust and oxygen‐independent catalytic efficiency. Furthermore, the system promotes efficient reactive oxygen species (ROS) generation, activates the caspase‐3/GSDME pathway, leading to photon‐controlled pyroptosis activation and a significant amplification of therapeutic efficacy. Overall, this metal‐free SiO 2 @COF nanoplatform combines rational design with enhanced catalytic activity and precise biological control, representing a promising advance toward next‐generation precision phototherapies.
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