Tumor-Associated Microglia/Macrophages Enhance the Invasion of Glioma Stem-like Cells via TGF-β1 Signaling Pathway

胶质瘤 下调和上调 癌症研究 小胶质细胞 基因敲除 肿瘤微环境 转化生长因子 生物 细胞因子 信号转导 细胞培养 细胞生物学 免疫学 炎症 肿瘤细胞 基因 生物化学 遗传学
作者
Xian-Zong Ye,Senlin Xu,Yan-hong Xin,Shi‐Cang Yu,Yi‐Fang Ping,Lu Chen,Hualiang Xiao,Bin Wang,Yi Liang,Qingliang Wang,Xuefeng Jiang,Lang Yang,Peng Zhang,Cheng Qian,You‐Hong Cui,Xia Zhang,Xiu‐Wu Bian
出处
期刊:Journal of Immunology [The American Association of Immunologists]
卷期号:189 (1): 444-453 被引量:459
标识
DOI:10.4049/jimmunol.1103248
摘要

Abstract The invasion of malignant glioma cells into the surrounding normal brain tissues is crucial for causing the poor outcome of this tumor type. Recent studies suggest that glioma stem-like cells (GSLCs) mediate tumor invasion. However, it is not clear whether microenvironment factors, such as tumor-associated microglia/macrophages (TAM/Ms), also play important roles in promoting GSLC invasion. In this study, we found that in primary human gliomas and orthotopical transplanted syngeneic glioma, the number of TAM/Ms at the invasive front was correlated with the presence of CD133+ GSLCs, and these TAM/Ms produced high levels of TGF-β1. CD133+ GSLCs isolated from murine transplanted gliomas exhibited higher invasive potential after being cocultured with TAM/Ms, and the invasiveness was inhibited by neutralization of TGF-β1. We also found that human glioma-derived CD133+ GSLCs became more invasive upon treatment with TGF-β1. In addition, compared with CD133− committed tumor cells, CD133+ GSLCs expressed higher levels of type II TGF-β receptor (TGFBR2) mRNA and protein, and downregulation of TGFBR2 with short hairpin RNA inhibited the invasiveness of GSLCs. Mechanism studies revealed that TGF-β1 released by TAM/Ms promoted the expression of MMP-9 by GSLCs, and TGFBR2 knockdown reduced the invasiveness of these cells in vivo. These results demonstrate that TAM/Ms enhance the invasiveness of CD133+ GSLCs via the release of TGF-β1, which increases the production of MMP-9 by GSLCs. Therefore, the TGF-β1 signaling pathway is a potential therapeutic target for limiting the invasiveness of GSLCs.
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