Related Experiment Video
Updated: May 11, 2025

Preparation of Janus Particles and Alternating Current Electrokinetic Measurements with a Rapidly Fabricated Indium Tin Oxide Electrode Array
Published on: June 23, 2017
Radio-Activated Selenium-Doped Janus Ag/Ag2SexSy Nanoparticles for Precise Cancer NIR-II Fluorescence Imaging and
Kang Zhu1, Zhanyuan Li2, Jingjing Cao1
1State Key Laboratory of Chemical Resource Engineering, College of Chemistry, College of Chemical Engineering, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.
Abstract:
The efficacy of radiotherapy (RT) is often limited by insufficient tumor selectivity and suboptimal therapeutic responses. To overcome these problems, a new kind of selenium-doped Ag/Ag2S Janus nanoparticles (Ag/Ag2SexSy JNPs) is presented as radio-responsive molecular probes for precise tumor imaging and enhanced radiosensitization. By adjusting the selenium precursor input, heterojunction nanoparticles with tunable doping ratios are synthesized, optimizing X-ray absorption and energy storage properties. Upon X-ray irradiation, the Ag/Ag2SexSy JNPs interact with overexpressed hydrogen peroxide (H2O2) in tumor cells, generating highly toxic hydroxyl radicals (·OH), which effectively induce tumor cell apoptosis. Additionally, Selenium incorporation improves electron-hole pair separation efficiency and enhances the photocurrent response, promoting increased electron transfer and ·OH generation, thus amplifying reactive oxygen species (ROS) production and enhancing radiosensitization. Furthermore, the fluorescence "OFF-ON" mechanism, triggered by H2O2-induced etching of silver allows real-time monitoring of H2O2 levels via the second near-infrared window (NIR-II) fluorescence (FL) imaging "Turn On", which delineates tumor boundaries for precise RT and reduce side effects to normal tissue. This dual-functional platform not only enables real-time tracking but also enhances therapeutic outcomes, offering a promising approach to precision cancer treatment.

