Cancer‐associated fibroblasts that restrain cancer progression: Hypotheses and perspectives

癌症 癌相关成纤维细胞 癌症研究 肿瘤进展 胰腺癌 间质细胞 癌细胞 表观遗传学 生物 血管生成 癌症干细胞 间充质干细胞 细胞外基质 肿瘤微环境 细胞生物学 遗传学 基因
作者
Yuki Miyai,Nobutoshi Esaki,Masahide Takahashi,Atsushi Enomoto
出处
期刊:Cancer Science [Wiley]
卷期号:111 (4): 1047-1057 被引量:171
标识
DOI:10.1111/cas.14346
摘要

Abstract The roles of cancer‐associated fibroblasts (CAF) in the progression of various types of cancers are well established. CAF promote cancer progression through pleiotropic mechanisms, including the secretion of soluble factors and extracellular matrix, physical interactions with cancer cells, and the regulation of angiogenesis, immunity and metabolism. Their contribution to therapeutic resistance is also well appreciated. Therefore, CAF have been considered as a therapeutic target in cancer. However, recent studies in autochthonous pancreatic cancer models suggest that specific subset(s) of CAF exhibit cancer‐restraining roles, indicating that CAF are functionally and molecularly heterogeneous, which is supported by recent single‐cell transcriptome analyses. While cancer‐promoting CAF (pCAF) have been extensively studied, the nature and specific marker(s) of cancer‐restraining CAF (rCAF) have remained uncharacterized. Interestingly, a recent study provided insight into the nature of rCAF and suggested that they may share molecular properties with pancreatic stellate cells (PSC) and mesenchymal stem/stromal cells (MSC). Complicating this finding is that PSC and MSC have been shown to promote the formation of a tumor‐permissive and tumor‐promoting environment in xenograft tumor models. However, these cells undergo significant transcriptional and epigenetic changes during ex vivo culture, which confounds the interpretation of experimental results based on the use of cultured cells. In this short review, we describe recent studies and hypotheses on the identity of rCAF and discuss their analogy to fibroblasts that suppress fibrosis in fibrotic diseases. Finally, we discuss how these findings can be exploited to develop novel anticancer therapies in the future.

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