脂肪生成
运行x2
细胞生物学
间充质干细胞
生物
骨形态发生蛋白2
祖细胞
细胞分化
骨形态发生蛋白7
基因敲除
MyoD公司
骨形态发生蛋白
干细胞
肌发生
成骨细胞
心肌细胞
体外
细胞培养
遗传学
基因
作者
Quan Kang,Wenxin Song,Qing Luo,Ni Tang,Jinyong Luo,Xiaoji Luo,Jing Chen,Yang Bi,Bai‐Cheng He,Jong Kyung Park,Wei Jiang,Yi Tang,Jiayi Huang,Yuxi Su,Gaohui Zhu,Yun He,Hong Yin,Zhenming Hu,Yì Wáng,Liang Chen
出处
期刊:Stem Cells and Development
[Mary Ann Liebert, Inc.]
日期:2008-07-10
卷期号:18 (4): 545-558
被引量:370
标识
DOI:10.1089/scd.2008.0130
摘要
Pluripotent mesenchymal stem cells (MSCs) are bone marrow stromal progenitor cells that can differentiate into osteogenic, chondrogenic, adipogenic, and myogenic lineages. Several signaling pathways have been shown to regulate the lineage commitment and terminal differentiation of MSCs. Here, we conducted a comprehensive analysis of the 14 types of bone morphogenetic protein (BMPs) for their abilities to regulate multilineage specific differentiation of MSCs. We found that most BMPs exhibited distinct abilities to regulate the expression of Runx2, Sox9, MyoD, and PPARgamma2. Further analysis indicated that BMP-2, BMP-4, BMP-6, BMP-7, and BMP-9 effectively induced both adipogenic and osteogenic differentiation in vitro and in vivo. BMP-induced commitment to osteogenic or adipogenic lineage was shown to be mutually exclusive. Overexpression of Runx2 enhanced BMP-induced osteogenic differentiation, whereas knockdown of Runx2 expression diminished BMP-induced bone formation with a decrease in adipocyte accumulation in vivo. Interestingly, overexpression of PPARgamma2 not only promoted adipogenic differentiation, but also enhanced osteogenic differentiation upon BMP-2, BMP-6, and BMP-9 stimulation. Conversely, MSCs with PPARgamma2 knockdown or mouse embryonic fibroblasts derived from PPARgamma2(-/-) mice exhibited a marked decrease in adipogenic differentiation, coupled with reduced osteogenic differentiation and diminished mineralization upon BMP-9 stimulation, suggesting that PPARgamma2 may play a role in BMP-induced osteogenic and adipogenic differentiation. Thus, it is important to understand the molecular mechanism behind BMP-regulated lineage divergence during MSC differentiation, as this knowledge could help us to understand the pathogenesis of skeletal diseases and may lead to the development of strategies for regenerative medicine.