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January 27, 2026Advanced Healthcare Materials1 citationsOpen Access

Ferritin‐Doped Nanoparticles Triggered Tumor‐Specific Darkening for Enhanced Photothermal Tumor Ablation and Immune Activation

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HZHaidong ZhaXLXiao LiangLXLong Xi

Key Points

  • This research aims to develop nanoparticles that specifically target tumors to improve photothermal therapy and immune activation.
  • Synthesis of a hybrid nanoparticle HFn/GA-Fe via cross-linking reaction.
  • Administration of HFn/GA-Fe through intravenous injection.
  • Assessment of tumor darkening through visual inspection and photoacoustic imaging.
  • Measurement of endothelial cell death and tumor hemorrhage using reactive oxygen species generation.
  • Evaluation of immune responses under laser irradiation.
  • HFn/GA-Fe darkened tumor color without toxicity to normal organs.
  • The nanoparticles bound specifically to tumor receptors (TfR1/TIM-2) and aggregated in lysosomes.
  • Induction of endothelial cell death and tumor-specific hemorrhage was observed.
  • Laser irradiation enhanced the photothermal effect via leaked deoxyhemoglobin, triggering immune responses.

Abstract

ABSTRACT Combining the lysosomal targeting ability of human ferritin heavy chain (HFn) and the strong oxidizing property of gallic acid‐iron complex (GA‐Fe), a hybrid nanoparticle HFn/GA‐Fe was synthesized by a cross‐linking reaction. We discovered that HFn/GA‐Fe would specifically darken the color of tumors after intravenous injection without rendering notable toxicity in normal organs, as observed by visual inspection and photoacoustic imaging. HFn/GA‐Fe specifically bound to HFn receptor (TfR1/TIM‐2) and aggregated at the lysosomal pH. HFn/GA‐Fe induced endothelial cell death and tumor‐specific hemorrhage by generating reactive oxygen species (ROS). Under laser irradiation, the leaked deoxyhemoglobin significantly enhanced the photothermal effect and subsequently triggered anti‐tumor immune responses. The cavities of ferritin nanocages can further encapsulate drugs, endowing them with broader application prospects.

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Cite This Study

Zha et al. (2026) studied this question.

synapsesocial.com/papers/697854bcccb046adae516fa7https://doi.org/10.1002/adhm.202505119
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