Heterodimeric Photosensitizer as Radical Generators to Promoting Type I Photodynamic Conversion for Hypoxic Tumor Therapy

T Tao Xiong (Jilin Province Key Laboratory of Organic Functional Molecular Design & Synthesis, Department of Chemistry) Y Yingchao Chen (State Key Laboratory of Fine Chemicals, Frontiers Science Center for Smart Materials Oriented Chemical Engineering, Dalian University of Technology, No. 2 Linggong Road, Dalian 116024, China) Q Qiang Peng X Xiao Zhou M Mingle Li (College of Materials Science and Engineering) S Sheng Lu X Xiaoqiang Chen (College of Materials Science and Engineering) J Jiangli Fan (Ningbo Institute of Dalian University of Technology) L Lei Wang X Xiaojun Peng (Dalian University of Technology , , 2 Linggong Road , ,)

Abstract

Abstract Photodynamic therapy (PDT) using traditional type II photosensitizers (PSs) has been limited in hypoxic tumors due to excessive oxygen consumption. The conversion from type II into a less oxygen‐dependent type I PDT pathway has shown the potential to combat hypoxic tumors. Herein, the design of a heterodimeric PS, NBSSe , by conjugating a widely used type I PS NBS and a type II PS NBSe via molecular dimerization, achieving the aggregation‐regulated efficient type I photodynamic conversion for the first time is reported. Electrochemistry characterizations and theoretical calculations elucidate that NBSSe tends to form a S +· /Se −· radical pair via intramolecular electron transfer in the co‐excited NBSSe * aggregate, realizing 7.25‐fold O 2 −· generation compared to NBS and 80% suppression of 1 O 2 generation compared to NBSe . The enhanced O 2 −· generation of NBSSe enables excellent anti‐hypoxia PDT efficiency and inhibition of pulmonary metastasis. Additionally, the incorporation of electron‐rich bovine serum albumin accelerates the recycling of cationic PS radical NBSSe +· , further boosting photostability and O 2 −· generation. The resultant BSA@NBSSe nanoparticles demonstrate successful tumor‐targeting PDT capability. This work provides an appealing avenue to convert ROS generation from the type II pathway to the type I pathway for efficient cancer phototherapy in hypoxia.

Article Details

Volume / Issue Vol. 37, Issue 10
Published March 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

T

Tao Xiong

Jilin Province Key Laboratory of Organic Functional Molecular Design & Synthesis, Department of Chemistry

Y

Yingchao Chen

State Key Laboratory of Fine Chemicals, Frontiers Science Center for Smart Materials Oriented Chemical Engineering, Dalian University of Technology, No. 2 Linggong Road, Dalian 116024, China

Q

Qiang Peng

X

Xiao Zhou

M

Mingle Li

College of Materials Science and Engineering

S

Sheng Lu

X

Xiaoqiang Chen

College of Materials Science and Engineering

J

Jiangli Fan

Ningbo Institute of Dalian University of Technology

L

Lei Wang

X

Xiaojun Peng

Dalian University of Technology , , 2 Linggong Road , ,