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Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014
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.
Abstract:
Human epidermal growth factor receptor 2 positive (HER2+) breast cancer, as a subtype with high invasiveness and poor prognosis, faces issues of intertumoral heterogeneity and signaling pathway dysregulation leading to trastuzumab resistance in clinical treatment. Therefore, innovative therapeutic strategies are urgently needed to enhance treatment efficacy and improve patient prognosis. In this study, we proposed an antibody-targeted nanoplatform responsive to the tumor microenvironment, aiming to induce ferroptosis in HER2+ breast cancer cells and thereby enhance the sensitivity to HER2-targeted drugs. Fe-MOF@Erastin@Herceptin (FEH) was prepared by loading Erastin onto mesoporous Fe-MOF and modifying it with trastuzumab (a HER2+ breast cancer cell-specific antibody). This platform gradually releases trastuzumab, Erastin, and Fe3+ in the tumor microenvironment. The modification of trastuzumab enhances tumor cell targeting while reducing toxicity to non-target cells and tissues. Erastin inhibits system XC - to reduce glutathione (GSH) synthesis. Fe3+ consumes glutathione and reduces itself to Fe2+ via a reduction reaction, which further enhances the catalytic effect of H2O2 and triggers the Fenton reaction to generate large amounts of reactive oxygen species (ROS). In the antibody-targeted cascade reaction, decreased intracellular GSH content and increased Fe2+ and ROS can further promote lipid peroxidation and down-regulation of glutathione peroxidase 4 (GPX4) in breast cancer cells, inducing ferroptosis. The experimental results indicate that FEH can significantly improve the tumor microenvironment by enhancing ferroptosis effects, providing a potential new strategy for precision therapy of HER2+ breast cancer cells.
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.

