1. Academic Validation
  2. A hollow nanozyme-based multifunctional platform enhances sonodynamic-chemodynamic-induced ferroptosis for cancer therapy

A hollow nanozyme-based multifunctional platform enhances sonodynamic-chemodynamic-induced ferroptosis for cancer therapy

  • RSC Adv. 2025 Mar 27;15(12):9408-9419. doi: 10.1039/d5ra00032g.
Qi Shen 1 Xi Zhu 2 Mengping Huo 1 Yafei Lin 1 Wenting Zhang 1 Ming Yang 1 Yang Zhang 1 Long Zhang 3 Yonghao Gai 1
Affiliations

Affiliations

  • 1 Department of Ultrasound, Shandong Provincial Hospital Affiliated to Shandong First Medical University Jinan Shandong 250021 P. R. China yangmingys@163.com wonderfulwater1989@163.com ultra_gaiyonghao@163.com.
  • 2 Institute of Biomedical Engineering, Kunming Medical University Kunming Yunnan 650500 P. R. China.
  • 3 Department of Orthopedics, The 80th Group Army Hospital of PLA Weifang Shandong 261000 P. R. China wyxl2007@163.com.
Abstract

Ferroptosis, a novel form of cell death driven by lipid peroxides (LPO) accumulation, holds promise for personalized Cancer therapy. However, its efficacy is constrained by the tumor microenvironment (TME), which is characterized by hypoxia, insufficient endogenous hydrogen peroxide (H2O2), and glutathione (GSH) overabundance. To address these limitations, we developed a multifunctional nanoplatform, HMnO2-VC@mPEG-Ce6 (HMVC), which integrates sono-chemodynamic strategies to induce synergistic Ferroptosis in prostate Cancer. The therapeutic superiority of HMVC stems from three coordinated mechanisms. Firstly, HMnO2 catalyze H2O2 decomposition to generate oxygen (O2), alleviating tumor hypoxia and amplifying the sonodynamic effect of chlorin e6 (Ce6). Secondly, vitamin C (VC) sustains H2O2 production via chemodynamic therapy (CDT), driving a burst of Reactive Oxygen Species (ROS). Thirdly, GSH-triggered reduction of Mn4+ to Mn2+ depletes GSH reserves and suppresses Glutathione Peroxidase 4 (GPX4) activity. These cascading actions disrupt the ROS-GPX4 equilibrium, leading to irreversible LPO accumulation and subsequent Ferroptosis. Our work establishes a generalizable nanotechnology paradigm to overcome TME barriers and achieve precise Ferroptosis regulation, offering a transformative strategy for Cancer treatment.

Figures
Products