Antibody-functionalized iron-based nanoplatform for ferroptosis-augmented targeted therapy of HER2-positive breast

Jingchao Gao1, Tong Ye1, Hongkun Miao1

  • 1Department of Oncology, Air Force Medical Center, PLA, The Fourth Military Medical University, Beijing, 100142, China.

Bioactive Materials
|July 11, 2025
PubMed

Insights

A novel nanoplatform, Fe-MOF@Erastin@Herceptin (FEH), targets HER2+ breast cancer cells to induce ferroptosis. This approach enhances sensitivity to HER2-targeted drugs, offering a promising strategy for improved treatment efficacy.

Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Oncology

Background:

  • HER2+ breast cancer exhibits high invasiveness and poor prognosis.
  • Trastuzumab resistance is a major challenge due to tumor heterogeneity and signaling dysregulation.
  • Innovative therapeutic strategies are crucial for enhancing treatment efficacy and patient outcomes.

Purpose of the Study:

  • To develop an antibody-targeted nanoplatform for inducing ferroptosis in HER2+ breast cancer cells.
  • To enhance sensitivity to HER2-targeted drugs through a novel therapeutic strategy.
  • To investigate the potential of Fe-MOF@Erastin@Herceptin (FEH) in precision therapy.

Main Methods:

  • Preparation of Fe-MOF@Erastin@Herceptin (FEH) nanoplatform.
  • Loading Erastin onto mesoporous Fe-MOF and modifying with trastuzumab.
  • Investigating the drug release, targeting, and ferroptosis induction mechanisms in the tumor microenvironment.

Main Results:

  • FEH demonstrated enhanced tumor cell targeting and reduced off-target toxicity.
  • Erastin inhibited glutathione synthesis, while Fe3+ promoted ROS generation via Fenton reaction.
  • The nanoplatform successfully induced ferroptosis by decreasing GSH, increasing Fe2+ and ROS, leading to lipid peroxidation and GPX4 downregulation.

Conclusions:

  • FEH nanoplatform effectively induces ferroptosis in HER2+ breast cancer cells.
  • This approach enhances sensitivity to HER2-targeted therapies.
  • FEH represents a potential new strategy for the precision therapy of HER2+ breast cancer.