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首页> 外文期刊>Oncogene >The role of proto-oncogene Fra-1 in remodeling the tumor microenvironment in support of breast tumor cell invasion and progression
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The role of proto-oncogene Fra-1 in remodeling the tumor microenvironment in support of breast tumor cell invasion and progression

机译:原癌基因Fra-1在重塑肿瘤微环境以支持乳腺癌细胞侵袭和发展中的作用

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摘要

A growing body of evidence indicates that interactions between neoplastic cells and tumor-associated macrophages (TAMs) in the tumor microenvironment (TME) are crucial in promoting tumor cell invasion and progression. Macrophages have an ambiguous role in these processes as this M1 phenotype correlates with tumoricidal capacity, whereas TAMs of M2 phenotype exert tumor-promoting effects. In this study, we provide evidence that interactions between mouse breast tumor cells and TAMs remodel the TME, leading to the upregulation of Fra-1, a member of the FOS family of transcription factor. In turn, this proto-oncogene initiates activation of the IL-6/JAK/Stat3 signaling pathway. This creates a malignant switch in breast tumor cells, leading to increased release of proangiogenic factors MMP-9, vascular endothelial growth factor and transforming growth factor-β from tumor cells and intensified invasion and progression of breast cancer. Proof of the concept for the crucial role played by transcription factor Fra-1 in regulating these processes was established by specific knockdown of Fra-1 with small interfering RNA, which resulted in a marked suppression of tumor cell invasion, angiogenesis and metastasis in a mouse breast cancer model. Such a strategy could eventually lead to future efficacious treatments of metastatic breast cancer.
机译:越来越多的证据表明,肿瘤微环境(TME)中的肿瘤细胞与肿瘤相关巨噬细胞(TAM)之间的相互作用对于促进肿瘤细胞的侵袭和进展至关重要。巨噬细胞在这些过程中起着模棱两可的作用,因为该M1表型与杀肿瘤能力相关,而M2表型的TAM则具有促肿瘤作用。在这项研究中,我们提供的证据表明,小鼠乳腺肿瘤细胞与TAM之间的相互作用可重塑TME,从而导致FOS(转录因子FOS家族的成员)的上调。反过来,该原癌基因启动了IL-6 / JAK / Stat3信号通路的激活。这在乳腺肿瘤细胞中产生了恶性转换,导致肿瘤细胞中促血管生成因子MMP-9,血管内皮生长因子和转化生长因子-β的释放增加,并加剧了乳腺癌的侵袭和进展。转录因子Fra-1在调节这些过程中起关键作用的概念证明是通过用小干扰RNA特异性敲低Fra-1来建立的,这可以显着抑制小鼠肿瘤细胞的侵袭,血管生成和转移乳腺癌模型。这种策略最终可能导致转移性乳腺癌的未来有效治疗。

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