Engineered membrane-coated nanoparticles enhance ferroptosis and microtubule inhibition in prostate cancer

  • J Mater Sci Mater Med. 2026 May 21;37(1):86. doi: 10.1007/s10856-026-07074-7.
Kunmu Yang  1 Yingwei Wang  2 Chuan Guo  1 Xiaoxiong Zhang  1 Jian Wu  3
Affiliations
  • 1. Department of Urology, Chengfei Hospital, Chengdu, China.
  • 2. Department of Nuclear Medicine, Affiliated Cancer Hospital of University of Electronic Science and Technology of China, Chengdu, China.
  • 3. Department of Urology, Chengfei Hospital, Chengdu, China. [email protected].
Abstract

Prostate Cancer (PCa), characterized by its high incidence and progression to treatment-resistant stages, remains a major clinical challenge. Herein, we developed a membrane-coated Cabazitaxel (Cab)@TA-Fe³⁺ nanoplatform for enhanced PCa therapy. The nanoparticles demonstrated notable Anticancer effects, with cytotoxicity increasing over time and with dose, along with significant inhibition of cell migration and induction of G2/M phase arrest in LNCaP cells. In addition, treatment markedly increased intracellular Reactive Oxygen Species (ROS) levels, depleted glutathione (GSH), downregulated Glutathione Peroxidase 4 (GPX4) expression, and upregulated NADPH Oxidase 1 (NOX1) and Prostaglandin-Endoperoxide Synthase 2 (PTGS2), indicating enhanced Ferroptosis. Ferrostatin-1 partially restored cell viability and reduced ROS accumulation, further supporting the involvement of Ferroptosis. Mechanistically, the nanoplatform enables pH/GSH-responsive release of Cab and iron ions in the tumor microenvironment, promoting microtubule disruption and redox imbalance. These combined effects enhance tumor cell death. Overall, this study demonstrates that Cab@TA-Fe³⁺ nanoparticles significantly improve Anticancer efficacy by integrating microtubule inhibition and Ferroptosis induction, providing a promising strategy for prostate Cancer treatment.

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