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Published on: November 28, 2019
Therapeutic Impact of Nanoparticle Therapy Targeting Tumor-Associated Macrophages
Courtney A Penn1, Kun Yang2, Hong Zong3
1Division of Gynecologic Oncology, Department of Obstetrics and Gynecology, University of Michigan, Ann Arbor, Michigan.
Abstract:
Antiangiogenic therapies, despite initial encouragement, have demonstrated a limited benefit in ovarian cancer. Laboratory studies suggest antiangiogenic therapy-induced hypoxia can induce tumor "stemness" as resistance to antiangiogenic therapy develops and limits the therapeutic benefit. Resistance to antiangiogenic therapy and an induction of tumor stemness may be mediated by proangiogenic tumor-associated macrophages (TAM). As such, TAMs have been proposed as a therapeutic target. We demonstrate here that ovarian TAMs express high levels of the folate receptor-2 (FOLR2) and can be selectively targeted using G5-dendrimer nanoparticles using methotrexate as both a ligand and a toxin. G5-methotrexate (G5-MTX) nanoparticles deplete TAMs in both solid tumor and ascites models of ovarian cancer. As a therapeutic agent, these nanoparticles are more effective than cisplatin. Importantly, these nanoparticles could (i) overcome resistance to antiangiogenic therapy, (ii) prevent antiangiogenic therapy-induced increases in cancer stem-like cells in both murine and human tumor cell models, (iii) prevent antiangiogenic therapy-induced increases in VEGF-C, and (iv) prevent antiangiogenic therapy-induced BRCA1 gene expression. Combined, this work strongly supports the development of TAM-targeted nanoparticle therapy. Mol Cancer Ther; 17(1); 96-106. ©2017 AACR.
Insights
Targeting tumor-associated macrophages (TAMs) with G5-methotrexate nanoparticles overcomes ovarian cancer resistance to antiangiogenic therapy. This novel approach depletes TAMs and prevents cancer stem cell development.
Area of Science:
- Oncology
- Nanomedicine
- Cancer Immunology
Background:
- Antiangiogenic therapies show limited efficacy in ovarian cancer.
- Therapy-induced hypoxia may drive tumor stemness and resistance.
- Tumor-associated macrophages (TAMs) are implicated in resistance and stemness.
Purpose of the Study:
- To investigate targeting TAMs as a strategy to overcome antiangiogenic therapy resistance in ovarian cancer.
- To evaluate the efficacy of G5-dendrimer nanoparticles carrying methotrexate (G5-MTX) for TAM depletion.
Main Methods:
- Ovarian TAMs were identified to express folate receptor-2 (FOLR2).
- G5-methotrexate (G5-MTX) nanoparticles were developed to target FOLR2-expressing TAMs.
- The efficacy of G5-MTX was assessed in solid tumor and ascites ovarian cancer models.
Main Results:
- G5-MTX nanoparticles effectively depleted TAMs in ovarian cancer models.
- G5-MTX demonstrated superior efficacy compared to cisplatin.
- The nanoparticles overcame resistance to antiangiogenic therapy and prevented therapy-induced increases in cancer stem-like cells, VEGF-C, and BRCA1 expression.
Conclusions:
- Targeting TAMs with G5-MTX nanoparticles is a promising strategy for ovarian cancer treatment.
- This approach can overcome resistance to antiangiogenic therapies and prevent cancer stemness.
- Further development of TAM-targeted nanoparticle therapy is strongly supported.
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