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微小RNA-885-3p通过靶向骨形态发生蛋白受体1A(BMPR1A)破坏血管生成并阻断骨形态发生蛋白/信号转导分子Smad/DNA结合抑制因子1(BMP/Smad/Id1)信号通路,从而抑制HT-29结肠癌细胞异种移植瘤的生长。

MicroRNA-885-3p inhibits the growth of HT-29 colon cancer cell xenografts by disrupting angiogenesis via targeting BMPR1A and blocking BMP/Smad/Id1 signaling.

作者信息

Xiao F, Qiu H, Cui H, Ni X, Li J, Liao W, Lu L, Ding K

机构信息

Glycochemistry and Glycobiology Laboratory, Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai, China.

出版信息

Oncogene. 2015 Apr 9;34(15):1968-78. doi: 10.1038/onc.2014.134. Epub 2014 Jun 2.

Abstract

The previous studies in this lab discovered that microRNA-885-3p (miR-885-3p) was regulated by a sulfated polysaccharide that bound to bone morphogenetic protein receptor, type IA (BMPR1A) to inhibit angiogenesis. However, its specific role and its mechanism of action in tumor cells have not been elucidated. We show that miR-885-3p markedly suppresses angiogenesis in vitro and in vivo. MiR-885-3p inhibits Smad1/5/8 phosphorylation and downregulates DNA-binding protein inhibitor ID-1 (Id1), a proangiogenic factor, by targeting BMPR1A, leading to impaired angiogenesis. Overexpression or silencing of BMPR1A affects angiogenesis in a Smad/Id1-dependent manner. We further show that miR-885-3p impairs the growth of HT-29 colon cancer cell xenografts in nude mice by suppressing angiogenesis through disruption of BMPR1A and Smad/Id1 signaling. These results support a novel role for miR-885-3p in tumor angiogenesis by targeting BMPR1A, which regulates a proangiogenic factor, and provide new evidence that targeting miRNAs might be an effective therapeutic strategy for improving colon cancer treatment.

摘要

该实验室之前的研究发现,微小RNA-885-3p(miR-885-3p)受一种硫酸化多糖调控,该多糖与骨形态发生蛋白受体IA型(BMPR1A)结合以抑制血管生成。然而,其在肿瘤细胞中的具体作用及其作用机制尚未阐明。我们发现,miR-885-3p在体外和体内均能显著抑制血管生成。miR-885-3p通过靶向BMPR1A抑制Smad1/5/8磷酸化并下调促血管生成因子DNA结合蛋白抑制剂ID-1(Id1),从而导致血管生成受损。BMPR1A的过表达或沉默以Smad/Id1依赖的方式影响血管生成。我们进一步发现,miR-885-3p通过破坏BMPR1A和Smad/Id1信号通路抑制血管生成,从而损害裸鼠体内HT-29结肠癌细胞异种移植物的生长。这些结果支持了miR-885-3p通过靶向BMPR1A在肿瘤血管生成中的新作用,BMPR1A调节一种促血管生成因子,并提供了新的证据表明靶向微小RNA可能是改善结肠癌治疗的有效治疗策略。

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