Department of Medicine, Harvard Medical School, Boston, Massachusetts, USA Department of Oral Medicine, Infection and Immunity, Harvard School of Dental Medicine, Boston, Massachusetts, USA.
Department of Medicine, Harvard Medical School, Boston, Massachusetts, USA Department of Oral Medicine, Infection and Immunity, Harvard School of Dental Medicine, Boston, Massachusetts, USA Endocrine Unit, Massachusetts General Hospital, Harvard Medical School, Boston, Massachusetts, USA.
Mol Cell Biol. 2014 Aug;34(16):3076-85. doi: 10.1128/MCB.00185-14. Epub 2014 Jun 2.
Osteoblasts and adipocytes arise from a common mesenchymal precursor cell. The cell fate decision of a mesenchymal precursor cell is under the influence of molecular cues and signaling pathways that lead to the activation or repression of lineage-specific transcription factors. The molecular mechanisms determining osteoblast versus adipocyte lineage specificity in response to bone morphogenic protein (BMP) remain unclear. In this study, we describe the mechanism through which Zfp521 (ZNF521), a regulator of lineage progression in multiple immature cell populations, regulates lineage specification of mesenchymal progenitor cells during BMP-induced differentiation events. In vivo deletion or in vitro knockdown of Zfp521 in mesenchymal precursors resulted in increased expression of the adipocyte determinant factor Zfp423 (ZNF423). This was concurrent with the loss of histone H3K9 methylation and an increase in histone H3K9 acetylation at the Zfp423 promoter, which together are indicative of decreased gene repression. Indeed, we found that Zfp521 occupies and represses the promoter and intronic enhancer regions of Zfp423. Accordingly, conditional deletion of Zfp521 inhibited heterotopic bone formation in response to local injection of BMP2. In contrast, marrow adiposity within BMP2-induced bone was markedly enhanced in Zfp521-deficient mice, suggesting that precursor cells lacking Zfp521 differentiate preferentially into adipocytes instead of osteoblasts in response to BMP2. Consistent with a cell-autonomous role of Zfp521 in mesenchymal precursors, knockdown of Zfp521 in stromal cells prevented BMP2-induced osteoblast marker expression and simultaneously enhanced lipid accumulation and expression of adipocyte-related genes. Taken together, the data suggest that Zfp521 is a cell fate switch critical for BMP-induced osteoblast commitment and identify Zfp521 as the intrinsic repressor of Zfp423 and hence of adipocyte commitment during BMP-induced mesenchymal precursor differentiation.
成骨细胞和脂肪细胞均来源于一种共同的间充质前体细胞。间充质前体细胞的细胞命运决定受到分子线索和信号通路的影响,这些线索和通路导致谱系特异性转录因子的激活或抑制。分子机制决定了在骨形态发生蛋白(BMP)作用下成骨细胞与脂肪细胞谱系的特异性,但仍不清楚。在这项研究中,我们描述了 Zfp521(ZNF521)的分子机制,Zfp521 是多种未成熟细胞群中谱系进展的调节因子,可调节间充质祖细胞在 BMP 诱导的分化过程中的谱系特异性。体内删除或体外敲低间充质前体细胞中的 Zfp521 会导致脂肪细胞决定因子 Zfp423(ZNF423)的表达增加。这与组蛋白 H3K9 甲基化的丧失和组蛋白 H3K9 乙酰化的增加同时发生,这两者均表明基因抑制的减少。事实上,我们发现 Zfp521 占据并抑制 Zfp423 的启动子和内含子增强子区域。因此,条件性删除 Zfp521 可抑制局部注射 BMP2 引起的异位骨形成。相反,在 Zfp521 缺陷小鼠中,BMP2 诱导的骨内骨髓脂肪量明显增加,这表明缺乏 Zfp521 的前体细胞在响应 BMP2 时优先分化为脂肪细胞而不是成骨细胞。与 Zfp521 在间充质前体细胞中具有细胞自主作用一致,基质细胞中 Zfp521 的敲低可阻止 BMP2 诱导的成骨细胞标志物表达,同时增强脂质积累和脂肪细胞相关基因的表达。总之,数据表明 Zfp521 是 BMP 诱导的成骨细胞决定的关键细胞命运开关,并将 Zfp521 鉴定为 BMP 诱导的间充质前体细胞分化过程中 Zfp423 的内在抑制因子,因此也是脂肪细胞决定的内在抑制因子。