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Published on: January 18, 2017
Cascade specific endogenous Fe3+ interference and in situ catalysis for tumor therapy with stemness suppression
Jiajie Chen1,2, Yitong Wang3, Jian Huang4
1State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 200050, China.
Abstract:
Cancer stem-like cells (CSCs), featuring high tumorigenicity and invasiveness, are one of the critical factors leading to the failure of clinical cancer treatment such as metastasis and recurrence. However, current strategies suffer from the low stemness-inhibiting efficacy on CSCs by conventional molecular agents and the poor lethal effects against bulk tumor cells. Here we engineer a coordination nanomedicine by 2,5-dihydroxyterephthalic acid (DHT) complexing zinc ions (Zn2+) as a double-effect nanodisrupter of tumor iron (Fe) and redox homeostasis for catalysis-boosted tumor therapy with stemness inhibition. Taking advantage of the much higher binding force of DHT toward Fe3+, this nanomedicine can specifically chelate endogenous Fe3+ into its nanostructure and release Zn2+, and the in situ formed hexacoordinated Fe-DHT conformation is of much enhanced reducibility in order to promote reactive oxygen species (ROS) production in tumors. The nanomedicine-mediated Fe depletion and ROS generation collectively induce CSC differentiation via downregulating the Wnt signaling and inducing forkhead box O3 (FoxO3) activation, respectively. Notably, the combined tumor-selective ROS generation and Zn2+-induced antioxidation dysfunction potently trigger intratumoral oxidative damage leading to both cellular apoptosis and ferroptosis. This nanomedicine, capable of synchronously treating CSCs and bulk tumor cells, has been demonstrated to effectively inhibit the growth, postoperative recurrence and metastasis of orthotopic triple-negative breast tumors in vivo, offering an encouraging candidate of cancer therapeutic agents for treating CSCs-enriched malignancy.
Insights
This study introduces a novel coordination nanomedicine that targets cancer stem-like cells (CSCs) and bulk tumor cells. The nanomedicine disrupts tumor iron and redox balance, inhibiting CSCs and reducing tumor growth, recurrence, and metastasis.
Area of Science:
- Biomedical Engineering
- Nanomedicine
- Cancer Therapy
Background:
- Cancer stem-like cells (CSCs) drive tumor metastasis and recurrence, resisting conventional treatments.
- Current therapies show limited efficacy in targeting CSCs and bulk tumor cells simultaneously.
Purpose of the Study:
- To engineer a dual-action nanomedicine for inhibiting CSC stemness and eliminating bulk tumor cells.
- To disrupt tumor iron and redox homeostasis for enhanced cancer treatment.
Main Methods:
- Developed a coordination nanomedicine using 2,5-dihydroxyterephthalic acid (DHT) and zinc ions (Zn2+).
- Utilized DHT's high affinity for Fe3+ to chelate iron and release Zn2+, forming a reducible Fe-DHT complex.
- Investigated the nanomedicine's effect on CSC differentiation via Wnt signaling and FoxO3 activation.
Main Results:
- The nanomedicine depleted tumor iron and generated reactive oxygen species (ROS), inducing CSC differentiation.
- Combined ROS generation and Zn2+-induced oxidative stress triggered apoptosis and ferroptosis in tumor cells.
- Demonstrated effective inhibition of tumor growth, recurrence, and metastasis in vivo.
Conclusions:
- The developed nanomedicine offers a promising strategy for simultaneously targeting CSCs and bulk tumor cells.
- This approach provides a potential therapeutic agent for CSC-enriched malignancies.
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