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Endogenous copper manipulation based on multifunctional gold nanoparticles elicit precise and self-reinforcing photothermal-chemodynamic therapy for effective treatment of metastatic breast cancer

  • Haoyu Wang
  • , Xiaolin Yu
  • , Handan Zhang
  • , Jie Liu
  • , Ruozhen Ma
  • , Li Chen
  • , Tao Liu
  • , Xinran Shi
  • , Wenyun Mu
  • , Xin Chen
  • School of Chemical Engineering and Technology
  • Zigong Fourth People’s Hospital

Research output: Contribution to journalArticlepeer-review

Abstract

Synergistic photothermal therapy (PTT) and chemodynamic therapy (CDT) represent a promising strategy for the treatment of metastatic breast cancer. However, the specificity and therapeutic efficacy of current approaches remain insufficient for clinical translation. Herein, multifunctional gold nanoparticles (ABSF NPs) co-modified with benzoylthiourea (BTU), S-nitrosothiol (SNO), and folic acid (FA) were fabricated to enable precise and efficient primary tumor elimination together with metastasis suppression for improved breast cancer treatment via Cu2+-triggered PTT/CDT, copper-catalyzed nitric oxide (NO) production, NO-enhanced CDT, and metastasis inhibition driven by intratumoral copper deprivation. Specifically, the novelty of this study lies in fabricating an intelligent nanomaterial to respond to and manipulate abnormally elevated Cu2+ levels in tumor cells. This system not only uses intracellular Cu2+ as an endogenous stimulus to simultaneously trigger photothermal therapy and NO-enhanced chemodynamic therapy for highly precise and efficient synergistic tumor treatment, but also performs on-demand copper deprivation to significantly suppress copper-mediated tumor metastasis. After administration, ABSF NPs preferentially accumulated at the tumor site via the enhanced permeability and retention (EPR) effect and FA-mediated targeting, followed by efficient cellular internalization. They then chelated excess intracellular Cu2+ through the BTU moieties, leading to a 52% reduction in intracellular copper levels in tumor cells. This chelation not only induced nanoparticle aggregation to generate in situ photothermal agents capable of raising the tumor temperature to ~52 °C under irradiation, but also converted captured Cu2+ into Cu+, which served as a catalyst for reactive oxygen species (ROS) generation and NO release, thereby enabling tumor-specific PTT/CDT and NO-enhanced therapy. More importantly, compared with the PBS group, the ABSF+PTT treatment reduced the final average tumor volume and tumor weight by 67% and 78%, respectively, and decreased the number of lung metastatic nodules by 85%. In addition, while all mice in the PBS group died by day 28, the ABSF+PTT group maintained an 86% survival rate at day 35. Both in vitro and in vivo results demonstrated that ABSF NPs safely and effectively inhibited tumor growth and metastasis, providing a novel paradigm for the treatment of malignant tumors.

Original languageEnglish
Article number177740
JournalChemical Engineering Journal
Volume541
DOIs
StatePublished - 1 Aug 2026
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Effective breast cancer therapy
  • Metastasis inhibition
  • Multifunctional gold nanoparticles
  • Precise and self-reinforcing photothermal-chemodynamic therapy
  • Utilization and manipulation of endogenous copper ions

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