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NIR-Powered CeVO4/Ag2S Redox Nanorocket for Tumor Penetration and Self-Sustaining Catalytic Therapy

  • Xiangwei Liu
  • , Jialun Li
  • , Paul E.D.Soto Rodriguez
  • , Renáta Oriňaková
  • , Dongpyo Kim
  • , Tiedong Sun*
  • , Chunxia Chen*
  • , Lei Wang*
  • *Corresponding author for this work
  • College of Chemistry, Chemical Engineering and Resource Utilization, Northeast Forestry University
  • University of La Laguna
  • Pavol Jozef Šafárik University
  • School of Integrated Circuits, Harbin Institute of Technology Shenzhen
  • School of Chemistry and Chemical Engineering, Harbin Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Nanozyme-based nanomotors have shown significant potential in biomedical applications, particularly in catalytic tumor therapy, due to their stability and autonomous propulsion capabilities. However, their therapeutic efficacy is limited by diffusion barriers within dense tumor tissues and low catalytic efficiency in the mild tumor microenvironment. Herein, Ag2S-decorated mesoporous silica-coated CeVO4-based near-infrared-powered nanorockets were designed and synthesized for enhanced-penetrating synergistic photothermal-catalytic tumor therapy. In this construct, the CeVO4 core acts as a redox-active chemical engine within the permeable silica shell, facilitating glutathione depletion and reactive oxygen species (ROS) generation from endogenous H2O2. The anchored Ag2S nanoparticles endow the nanorockets with the capability of NIR-driven self-propulsion behavior via active thermophoresis. Under NIR irradiation, the localized heat drives the nanorockets to overcome diffusion barriers and reach internal tumor reservoirs. Simultaneously, this thermal effect accelerates catalytic reaction kinetics, thereby establishing a self-sustaining therapeutic loop. This approach addresses the limitations of poor tissue penetration and low functional coupling, providing a motility-enhanced, self-amplifying anti-tumor strategy.

Original languageEnglish
JournalSmall
DOIs
StateAccepted/In press - 2026
Externally publishedYes

Keywords

  • cerium vanadate
  • nanomotors
  • nanozyme
  • near-infrared
  • photothermal therapy

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