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May 15, 2026International Journal of Nanomedicine2 citationsOpen Access

Therapeutic Metal Ions: Engineering Biomaterials for Multimodal Disease Treatment

YLYan LiuXWXinlin WuXSXiulan Su

Key Points

  • This review aims to explore the therapeutic properties of metal ions in multimodal disease treatment through biomaterials.
  • Systematic review of metal-based biomaterials, including MOFs, nanoparticles, and protein-inspired polymers.
  • Analysis of design strategies like multi-metal synergy, dynamic responsiveness, and biomimetic structures.
  • Evaluation of translational challenges in clinical application and future directions for research.
  • Metal-based biomaterials show potential in antitumor therapy, anti-infection, and tissue repair.
  • 85% of current research is limited to cellular studies, with minimal in vivo data available.
  • Major challenges include narrow therapeutic windows and unpredictable interactions with the immune system.

Abstract

Abstract: Metal ions possess unique catalytic, immunomodulatory, and antimicrobial properties, demonstrating multimodal therapeutic potential in chemodynamic therapy, tumor immunotherapy, tissue regeneration, and anti-infective applications. This review systematically outlines metal-based biomaterials, including metal-organic frameworks, nanoparticles, mixed matrix membranes, and protein-inspired metal polymers, as well as design strategies such as multi-metal synergy, dynamic responsiveness, biomimetic structures, and three-dimensional printing. Drawing on the principles of coordination chemistry, electron transfer, and signaling pathway interference, we elucidate the core mechanisms by which metal ions regulate cell death, immune responses, and tissue regeneration. Nevertheless, approximately 85% of current research remains at or below the cellular level, with in vivo studies accounting for less than 85%, and human clinical studies are completely lacking. Most metal ions have a narrow therapeutic window; non-specific release may induce oxidative stress and organ toxicity, and the long-term in vivo behavior of engineered carriers remains poorly understood. Key translational challenges include the absence of standardized guidelines for evaluating release kinetics and toxicology, difficulties in scalable manufacturing and batch-to-batch consistency, and unpredictable interactions with the host’s endogenous metal pool and immune system. In summary, metal-based biomaterials exhibit broad application value and unique therapeutic potential in the fields of antitumor therapy, anti-infection, tissue repair, and theranostics. Although current readiness for clinical translation remains at an early stage, the translational potential of these materials warrants further investigation. Future efforts should focus on systematic in vivo validation and optimization of material design to facilitate progression toward clinical application. Infographic on materials, coordination chemistry and applications in therapy and regeneration.The infographic presents three main sections. On the left, ’Materials’ include MOFs, nanoparticles, mixed matrix membranes and protein-inspired metal polymers, highlighting multimetal synergy, dynamic response and biomimetic structure. The center focuses on ’Coordination Chemistry, Electron Transfer, Signaling Interference’ and ’Cell Death, Immune, Tissue Regeneration’. On the right, ’Applications’ cover chemodynamic therapy, cancer immunotherapy, tissue regeneration and anti-infection. Below, key challenges are listed: narrow therapeutic window, non-specific release, lack of standards, scalability issues and immune interference. Future directions include systematic in vivo validation, material optimization and clinical translation. Keywords: metal ions-biomaterials, material design, antitumor, anti-infection, tissue repair

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/6a06b7a1e7dec685947aa589https://doi.org/10.2147/ijn.s603122
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