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Microenvironment-induced PTEN loss by exosomal microRNA primes brain metastasis outgrowth

PTEN公司 癌症研究 生物 肿瘤微环境 转移 小RNA 胶质瘤 癌细胞 微泡 星形胶质细胞 外体 癌症 细胞生物学 PI3K/AKT/mTOR通路 神经科学 中枢神经系统 信号转导 基因 肿瘤细胞 生物化学 遗传学
作者
Lin Zhang,Siyuan Zhang,Jun Yao,Frank J. Lowery,Qingling Zhang,Wen-Chien Huang,Ping Li,Min Li,Xiao Wang,Chen‐Yu Zhang,Hai Wang,Kenneth J. Ellis,Mujeeburahiman Cheerathodi,Joseph H. McCarty,Diane Palmieri,Jodi M. Saunus,Sunil R. Lakhani,Suyun Huang,Ayşegül A. Şahin,Kenneth Aldape
出处
期刊:Nature [Nature Portfolio]
卷期号:527 (7576): 100-104 被引量:1071
标识
DOI:10.1038/nature15376
摘要

The development of life-threatening cancer metastases at distant organs requires disseminated tumour cells' adaptation to, and co-evolution with, the drastically different microenvironments of metastatic sites. Cancer cells of common origin manifest distinct gene expression patterns after metastasizing to different organs. Clearly, the dynamic interaction between metastatic tumour cells and extrinsic signals at individual metastatic organ sites critically effects the subsequent metastatic outgrowth. Yet, it is unclear when and how disseminated tumour cells acquire the essential traits from the microenvironment of metastatic organs that prime their subsequent outgrowth. Here we show that both human and mouse tumour cells with normal expression of PTEN, an important tumour suppressor, lose PTEN expression after dissemination to the brain, but not to other organs. The PTEN level in PTEN-loss brain metastatic tumour cells is restored after leaving the brain microenvironment. This brain microenvironment-dependent, reversible PTEN messenger RNA and protein downregulation is epigenetically regulated by microRNAs from brain astrocytes. Mechanistically, astrocyte-derived exosomes mediate an intercellular transfer of PTEN-targeting microRNAs to metastatic tumour cells, while astrocyte-specific depletion of PTEN-targeting microRNAs or blockade of astrocyte exosome secretion rescues the PTEN loss and suppresses brain metastasis in vivo. Furthermore, this adaptive PTEN loss in brain metastatic tumour cells leads to an increased secretion of the chemokine CCL2, which recruits IBA1-expressing myeloid cells that reciprocally enhance the outgrowth of brain metastatic tumour cells via enhanced proliferation and reduced apoptosis. Our findings demonstrate a remarkable plasticity of PTEN expression in metastatic tumour cells in response to different organ microenvironments, underpinning an essential role of co-evolution between the metastatic cells and their microenvironment during the adaptive metastatic outgrowth. Our findings signify the dynamic and reciprocal cross-talk between tumour cells and the metastatic niche; importantly, they provide new opportunities for effective anti-metastasis therapies, especially of consequence for brain metastasis patients.
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