A Wnt-Induced Phenotypic Switch in Cancer-Associated Fibroblasts Inhibits EMT in Colorectal Cancer

Wnt信号通路 丹麦克朗 癌症研究 生物 肿瘤进展 间质细胞 上皮-间质转换 结直肠癌 癌症 癌细胞 癌相关成纤维细胞 癌症干细胞 转移 肿瘤微环境 细胞生物学 信号转导 遗传学 肿瘤细胞
作者
Mohammed H. Mosa,Birgitta E. Michels,Constantin Menche,Adele M. Nicolas,Tahmineh Darvishi,Florian R. Greten,Henner F. Farin
出处
期刊:Cancer Research [American Association for Cancer Research]
卷期号:80 (24): 5569-5582 被引量:109
标识
DOI:10.1158/0008-5472.can-20-0263
摘要

Abstract Tumor progression is recognized as a result of an evolving cross-talk between tumor cells and their surrounding nontransformed stroma. Although Wnt signaling has been intensively studied in colorectal cancer, it remains unclear whether activity in the tumor-associated stroma contributes to malignancy. To specifically interfere with stromal signals, we generated Wnt-independent tumor organoids that secrete the Wnt antagonist Sfrp1. Subcutaneous transplantation into immunocompetent as well as immunodeficient mice resulted in a strong reduction of tumor growth. Histologic and transcriptomic analyses revealed that Sfrp1 induced an epithelial–mesenchymal transition (EMT) phenotype in tumor cells without affecting tumor-intrinsic Wnt signaling, suggesting involvement of nonimmune stromal cells. Blockage of canonical signaling using Sfrp1, Dkk1, or fibroblast-specific genetic ablation of β-catenin strongly decreased the number of cancer-associated myofibroblasts (myCAF). Wnt activity in CAFs was linked with distinct subtypes, where low and high levels induced an inflammatory-like CAF (iCAF) subtype or contractile myCAFs, respectively. Coculture of tumor organoids with iCAFs resulted in significant upregulation of EMT markers, while myCAFs reverted this phenotype. In summary, we show that tumor growth and malignancy are differentially regulated via distinct fibroblast subtypes under the influence of juxtacrine Wnt signals. Significance: This study provides evidence for Wnt-induced functional diversity of colorectal cancer–associated fibroblasts, representing a non-cell autonomous mechanism for colon cancer progression.
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