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A Mouse Model to Investigate the Role of Cancer-Associated Fibroblasts in Tumor Growth
Published on: December 22, 2020
Cancer-associated fibroblasts expressing FSTL3 promote vasculogenic mimicry formation and drive colon cancer
Leqian Ying1, Yini Zhu2, Lu Zhang1
1Department of Oncology, Zhongda Hospital, Medical School, Southeast University, Nanjing, 210009, Jiangsu, China.
Abstract:
Anti-angiogenic therapies are commonly employed in colon cancer management, yet many patients eventually develop resistance and experience disease progression. Vasculogenic mimicry (VM)-the formation of tumor-derived vessel-like networks-has been recognized as one mechanism contributing to this resistance, although the underlying details remain incompletely understood. Here, by integrating bioinformatic analyses of publicly available datasets and validating the results in patient samples (n = 157), we identified follistatin-like 3 (FSTL3) as a critical factor predominantly expressed in colon cancer-associated fibroblasts (CCAFs), with its expression strongly correlating with increased VM formation, intratumoral blood vessels, and poor prognosis. Single-cell RNA sequencing of tumors from VM and non-VM patients revealed that hypoxia drives FSTL3 expression in CCAFs, leading to extracellular matrix remodeling and enhancing cancer cell endothelial-like plasticity. Mechanistically, FSTL3 binds to transferrin receptor (TfR1), an iron-uptake receptor on cancer cells, thereby activating the TfR1/AKT/mTOR pathway and elevating VE-Cadherin to support endothelial-like transformation, VM, and metastatic progression. Notably, FSTL3-targeting antibodies (aFSTL3) effectively inhibited VM and angiogenesis in both in vitro and in vivo models, while the combination of aFSTL3 with bevacizumab produced synergistic suppression of neovascular-like structures and distant metastases. These findings demonstrate a pivotal role for FSTL3+ CCAFs in facilitating VM through TfR1-mediated signaling and offer a promising dual-target approach to overcome anti-angiogenic therapy resistance in colon cancer.
Insights
Follistatin-like 3 (FSTL3) expressed by cancer-associated fibroblasts drives vasculogenic mimicry (VM) in colon cancer. Targeting FSTL3 offers a novel strategy to overcome resistance to anti-angiogenic therapies.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Anti-angiogenic therapies are standard for colon cancer but often fail due to resistance.
- Vasculogenic mimicry (VM), the formation of tumor-derived vessels, is a key resistance mechanism.
- The specific drivers of VM in colon cancer remain incompletely understood.
Purpose of the Study:
- To identify novel factors contributing to VM in colon cancer.
- To elucidate the molecular mechanisms by which these factors promote VM.
- To evaluate therapeutic strategies targeting these factors to overcome anti-angiogenic resistance.
Main Methods:
- Bioinformatic analysis of public datasets and validation in patient samples (n=157).
- Single-cell RNA sequencing to analyze tumor microenvironments.
- In vitro and in vivo functional assays using FSTL3-targeting antibodies (aFSTL3).
Main Results:
- Follistatin-like 3 (FSTL3) is highly expressed in colon cancer-associated fibroblasts (CCAFs) and correlates with VM, angiogenesis, and poor prognosis.
- Hypoxia induces FSTL3 expression in CCAFs, promoting extracellular matrix remodeling and cancer cell plasticity.
- FSTL3 activates the transferrin receptor (TfR1)/AKT/mTOR pathway in cancer cells, driving VM and metastasis.
- aFSTL3 inhibited VM and angiogenesis; combination with bevacizumab showed synergistic effects.
Conclusions:
- FSTL3+ CCAFs are critical drivers of VM in colon cancer via TfR1 signaling.
- Targeting FSTL3 presents a promising strategy to overcome anti-angiogenic therapy resistance.
- Combined FSTL3 and bevacizumab therapy offers a synergistic approach to suppress tumor growth and metastasis.
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