Targeting FAPα-expressing hepatic stellate cells overcomes resistance to antiangiogenics in colorectal cancer liver metastasis models

肝星状细胞 癌症研究 转移 旁分泌信号 贝伐单抗 成纤维细胞活化蛋白 结直肠癌 间质细胞 肿瘤微环境 癌细胞 医学 癌症 化学 病理 内科学 受体 肿瘤细胞 化疗
作者
Ming Qi,Shuran Fan,Maohua Huang,Jinghua Pan,Yong Li,Qun Miao,Wen-Yu Lyu,Xiaobo Li,Lijuan Deng,Shenghui Qiu,Tongzheng Liu,Weiqing Deng,Xiaodong Chu,Chang Jiang,Wenzhuo He,Liangping Xia,Yunlong Yang,Jian Hong,Qi Qi,Wenqian Yin
出处
期刊:Journal of Clinical Investigation [American Society for Clinical Investigation]
卷期号:132 (19) 被引量:44
标识
DOI:10.1172/jci157399
摘要

Vessel co-option has been demonstrated to mediate colorectal cancer liver metastasis (CRCLM) resistance to antiangiogenic therapy. The current mechanisms underlying vessel co-option have mainly focused on "hijacker" tumor cells, whereas the function of the "hijackee" sinusoidal blood vessels has not been explored. Here, we found that the occurrence of vessel co-option in bevacizumab-resistant CRCLM xenografts was associated with increased expression of fibroblast activation protein α (FAPα) in the co-opted hepatic stellate cells (HSCs), which was dramatically attenuated in HSC-specific conditional Fap-knockout mice bearing CRCLM allografts. Mechanistically, bevacizumab treatment induced hypoxia to upregulate the expression of fibroblast growth factor-binding protein 1 (FGFBP1) in tumor cells. Gain- or loss-of-function experiments revealed that the bevacizumab-resistant tumor cell-derived FGFBP1 induced FAPα expression by enhancing the paracrine FGF2/FGFR1/ERK1/-2/EGR1 signaling pathway in HSCs. FAPα promoted CXCL5 secretion in HSCs, which activated CXCR2 to promote the epithelial-mesenchymal transition of tumor cells and the recruitment of myeloid-derived suppressor cells. These findings were further validated in tumor tissues derived from patients with CRCLM. Targeting FAPα+ HSCs effectively disrupted the co-opted sinusoidal blood vessels and overcame bevacizumab resistance. Our study highlights the role of FAPα+ HSCs in vessel co-option and provides an effective strategy to overcome the vessel co-option-mediated bevacizumab resistance.
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