Self‐Sustained Biophotocatalytic Nano‐Organelle Reactors with Programmable DNA Switches for Combating Tumor Metastasis

W Wenshuai Han (State Key Laboratory of Marine Food Processing and Safety Control Key Laboratory of Marine Drugs Chinese Ministry of Education Ocean University of China Qingdao China) J Jiayi Ding B Bo Qiao Y Yingjie Yu H Hao Sun D Daniel Crespy (Department of Materials Science and Engineering School of Molecular Science and Engineering Vidyasirimedhi Institute of Science and Technology VISTEC Rayong Thailand) K Katharina Landfester (Max Planck Institute for Polymer Research) X Xiangzhao Mao S Shuai Jiang (State Key Laboratory of Chemical Reaction Dynamics and Dalian Coherent Light Source, Dalian Institute of Chemical Physics)

Abstract

Abstract Metastasis, the leading cause of mortality in cancer patients, presents challenges for conventional photodynamic therapy (PDT) due to its reliance on localized light and oxygen application to tumors. To overcome these limitations, a self‐sustained organelle‐mimicking nanoreactor is developed here with programmable DNA switches that enables bio‐chem‐photocatalytic cascade‐driven starvation‐photodynamic synergistic therapy against tumor metastasis. Emulating the compartmentalization and positional assembly strategies found in living cells, this nano‐organelle reactor allows quantitative co‐compartmentalization of multiple functional modules for the designed self‐illuminating chemiexcited PDT system. Within the space‐confined nanoreactor, biofuel glucose is converted to hydrogen peroxide (H 2 O 2 ) which enhances luminol‐based chemiluminescence (CL), consequently driving the generation of photochemical singlet oxygen ( 1 O 2 ) via chemiluminescence resonance energy transfer. Meanwhile, hemoglobin functions as a synchronized oxygen supplier for both glucose oxidation and PDT, while also exhibiting peroxidase‐like activity to produce hydroxyl radicals (·OH). Crucially, the nanoreactor keeps switching off in normal tissues, with on‐demand activation in tumors through toehold‐mediated strand displacement. These findings demonstrate that this nanoreactor, which is self‐sufficient in light and oxygen and precise in striking tumors, presents a promising paradigm for managing highly metastatic cancers.

Article Details

Volume / Issue Vol. 37, Issue 9
Published March 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

W

Wenshuai Han

State Key Laboratory of Marine Food Processing and Safety Control Key Laboratory of Marine Drugs Chinese Ministry of Education Ocean University of China Qingdao China

J

Jiayi Ding

B

Bo Qiao

Y

Yingjie Yu

H

Hao Sun

D

Daniel Crespy

Department of Materials Science and Engineering School of Molecular Science and Engineering Vidyasirimedhi Institute of Science and Technology VISTEC Rayong Thailand

K

Katharina Landfester

Max Planck Institute for Polymer Research

X

Xiangzhao Mao

S

Shuai Jiang

State Key Laboratory of Chemical Reaction Dynamics and Dalian Coherent Light Source, Dalian Institute of Chemical Physics