化学发光
纳米点
单线态氧
光动力疗法
电子转移
活性氧
光激发
荧光
羟基自由基
光化学
化学
光氧化
光诱导电子转移
光敏剂
超氧化物
体内
光毒性
肿瘤微环境
激发态
电子传输链
吸收(声学)
生物物理学
临床前影像学
碳纤维
单重态
双光子激发显微术
罗丹明B
荧光寿命成像显微镜
二氧乙烷
作者
Run‐Wei Song,Tianci Jiang,Xiang Zhang,Cheng‐Long Shen,Qing Lou,Chongxin Shan
出处
期刊:Advanced Science
[Wiley]
日期:2024-12-11
卷期号:12 (5): e2411898-e2411898
被引量:3
标识
DOI:10.1002/advs.202411898
摘要
Abstract In classical photodynamic therapy, tumor cells are killed by the cytotoxic species via type‐I/II photochemical reactions, seriously limited by the external photoexcitation and hypoxia. Herein, the electron transfer mechanism between fluorophores and peroxalate‐H 2 O 2 reaction is investigated and the singlet/triplet electron exchange is utilized to achieve long‐persistent chemiluminescence imaging and synergistic type‐I/II/III photodynamic therapy. As a proof‐of‐concept, the photosensitizers of carbon nanodots (CDs)‐loaded chlorin e6 (CDs‐Ce6) are designed and integrated with the peroxalate molecules, and the as‐prepare polymer carbon nanodots ( p ‐CDs) exhibit novel tumor microenvironment (TME)‐responsive long‐persistent near‐infrared CL and photochemical reactions, evoking the in vivo imaging and synergistic dynamic therapy in tumor tissue. Mechanistically, the excess reactive oxygen species in TME can trigger the chemically initiated singlet/triplet electron exchange between the hydrophobic CDs‐Ce6 and peroxalate‐derived 1,2‐dioxetanes and thus the excess excited singlet/triplet electron of the CDs‐Ce6 can ensure the long‐persistent near‐infrared CL, type I/II photochemical production of hydroxyl radicals, superoxide radical and singlet oxygen, and type III photochemical damage of maladjusted biomacromolecules, enabling the long‐persistent near‐infrared biological imaging and enhanced cancer therapy. These results shed a new sight into the energy transfer mechanism in chemiluminescence and pave a new sight into the architecture of multifunctional theragnostic nanoplatforms.
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