Energy Interception‐Enhanced Ultrasound‐Induced Luminescence Enables Efficient Anticancer Monitoring

Y Youjuan Wang (Department of Diagnostic Ultrasound Imaging & Interventional Therapy, The Cancer Hospital of the University of Chinese Academy of Sciences (Zhejiang Cancer Hospital), Hangzhou Institute of Medicine (HIM)) X Xueying Liu (Innovation Center of NanoMedicine, Kawasaki Institute of Industrial Promotion, 3-25-14 Tonomachi, Kawasaki-ku, Kawasaki 210-0821, Japan) H Hongyong Zheng (Department of Clinical Laboratory, Zhejiang Cancer Hospital, The Key Laboratory of Zhejiang Province for Basic and Clinical Application of Functional Nucleic Acids, Hangzhou Institute of Medicine (HIM) Chinese Academy of Sciences Hangzhou 310022 China) Z Zhe Li T Ting Fu Q Qin Wu W Weihong Tan (Institute of Molecular Medicine (IMM), Department of Nephrology, Molecular Cell Laboratory for Kidney Disease, Shanghai Peritoneal Dialysis Research Center, Uremia Diagnosis and Treatment Center, State Key Laboratory of Systems Medicine for Cancer, Renji Hospital, School of Medicine, School of Chemistry and Chemical Engineering)

Abstract

Abstract Ultrasound‐induced luminescence (UIL) imaging uses the ultrasound mechanical force to trigger luminescence from different materials within tissue, offering improved signal‐to‐noise ratio and imaging depth compared with traditional fluorescence imaging. However, some obstacles hinder this technique, including the limited available molecules, ambiguous mechanism and low luminescence intensity. Herein, we expand the types of UIL molecules to include several phthalocyanines and semiconductor polymers. We demonstrate that these molecules enable convert ultrasound fluctuations into reactive oxygen species (ROS) through piezocatalysis. Subsequently, ROS oxidize unsaturated bonds in molecules for transducing chemical energy into photons, during which energy conversion and utilization efficiency dictating resultant luminescence intensity. Capitalizing on this mechanism, we further design energy interception strategy by employing substrates with heightened reactivity toward ROS, enabling efficient capture of the chemical energy stored in ROS and a 78.7‐fold increase in UIL intensity. ROS generated under ultrasonic excitation not only induce luminescence but also damage tumor cells through synergistic oxidation and inflammatory cascade activation, implicating a correlation between luminescence intensity and cell death. Consequently, our enhanced UIL system provides an accurate, real‐time reporter for ROS generation under ultrasonic excitation and establishes a reliable platform for monitoring and evaluating tumor therapeutic efficacy.

Article Details

Volume / Issue Vol. 65, Issue 4
Published January 22, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

Y

Youjuan Wang

Department of Diagnostic Ultrasound Imaging & Interventional Therapy, The Cancer Hospital of the University of Chinese Academy of Sciences (Zhejiang Cancer Hospital), Hangzhou Institute of Medicine (HIM)

X

Xueying Liu

Innovation Center of NanoMedicine, Kawasaki Institute of Industrial Promotion, 3-25-14 Tonomachi, Kawasaki-ku, Kawasaki 210-0821, Japan

H

Hongyong Zheng

Department of Clinical Laboratory, Zhejiang Cancer Hospital, The Key Laboratory of Zhejiang Province for Basic and Clinical Application of Functional Nucleic Acids, Hangzhou Institute of Medicine (HIM) Chinese Academy of Sciences Hangzhou 310022 China

Z

Zhe Li

T

Ting Fu

Q

Qin Wu

W

Weihong Tan

Institute of Molecular Medicine (IMM), Department of Nephrology, Molecular Cell Laboratory for Kidney Disease, Shanghai Peritoneal Dialysis Research Center, Uremia Diagnosis and Treatment Center, State Key Laboratory of Systems Medicine for Cancer, Renji Hospital, School of Medicine, School of Chemistry and Chemical Engineering