化学
光动力疗法
活性氧
生物相容性
体内
电子转移
系统间交叉
生物物理学
纳米技术
癌症研究
生物化学
光化学
材料科学
生物技术
生物
物理
有机化学
激发态
核物理学
单重态
作者
Yuan Rui,Wen Chen,Minyan Zhuang,Xiaowei Chi,Lin Ma,Liang Mi,Mengxue Dong,Peng Huang,Yu Wan,Peng Zhang,Wu Hui
标识
DOI:10.1021/acs.jmedchem.4c01587
摘要
In contrast to Type-II photodynamic therapy (PDT), Type-I PDT with less oxygen consumption has shown great potential against tumor hypoxia. However, there are limited strategies available for designing Type-I photosensitizers (PSs). Herein, we present a promising strategy for synthesizing Type-I PSs (TBC-1-TBC-4) using Tröger's base (TB) framework. The TB framework can promote intersystem crossing efficiency and create an electron-rich environment, making it the most likely site for electron transfer to O2 to generate Type-I ROS. As anticipated, TBC-1-TBC-4 demonstrates Type-I ROS generation capability and their impressive visible light-harvesting ability significantly enhances this capability. Among them, TBC-1 demonstrates outstanding biocompatibility and PDT efficiency in vitro under both normoxia and hypoxia. Furthermore, TBC-1 effectively inhibits tumor growth in vivo, with negligible side effects. This is attributed to TBC-1's efficient generation of Type-I ROS and endoplasmic reticulum targeting ability. This study thus offers useful insights into developing Type-I PSs.
科研通智能强力驱动
Strongly Powered by AbleSci AI