首页> 外文期刊>The Journal of biological chemistry >Histone Deacetylase Inhibition Promotes Osteoblast Maturation by Altering the Histone H4 Epigenome and Reduces Akt Phosphorylation
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Histone Deacetylase Inhibition Promotes Osteoblast Maturation by Altering the Histone H4 Epigenome and Reduces Akt Phosphorylation

机译:通过改变组蛋白H4外形组织并减少AKT磷酸化来促进成骨细胞抑制促进成骨细胞成熟

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摘要

Bone has remarkable regenerative capacity, but this ability diminishes during aging. Histone deacetylase inhibitors (HDIs) promote terminal osteoblast differentiation and extracellular matrix production in culture. The epigenetic events altered by HDIs in osteoblasts may hold clues for the development of new anabolic treatments for osteoporosis and other conditions of low bone mass. To assess how HDIs affect the epigenome of committed osteoblasts, MC3T3 cells were treated with suberoylanilide hydroxamic acid (SAHA) and subjected to microarray gene expression profiling and high-throughput ChIP-Seq analysis. As expected, SAHA induced differentiation and matrix calcification of osteoblasts in vitro. ChIP-Seq analysis revealed that SAHA increased histone H4 acetylation genome-wide and in differentially regulated genes, except for the 500 bp upstream of transcriptional start sites. Pathway analysis indicated that SAHA increased the expression of insulin signaling modulators, including Slc9a3r1. SAHA decreased phosphorylation of insulin receptor β, Akt, and the Akt substrate FoxO1, resulting in FoxO1 stabilization. Thus, SAHA induces genome-wide H4 acetylation and modulates the insulin/Akt/FoxO1 signaling axis, whereas it promotes terminal osteoblast differentiation in vitro.
机译:骨骼具有显着的再生能力,但这种能力在老龄化期间减少。组蛋白脱乙酰酶抑制剂(HDIS)促进培养物末端成骨细胞分化和细胞外基质产生。在成骨细胞中,HDIS改变的表观遗传事件可以抑制用于开发用于骨质疏松症和其他低骨质量条件的新的合成代谢治疗的线索。为了评估HDI如何影响致癌成骨细胞的外观蛋白酶,用Suberoylanilide羟肟酸(Saha)处理MC3T3细胞,并进行微阵列基因表达分析和高通量芯片-SEQ分析。正如预期的那样,萨哈诱导体外成骨细胞的分化和基质钙化。 CHIP-SEQ分析显示,除了转录起始位点上游的500bp外,莎哈增加了组蛋白H4乙酰化基因组和差异调节基因。途径分析表明,Saha增加了胰岛素信号调节剂的表达,包括SLC9A3R1。莎哈减少了胰岛素受体β,akt和akt底物foxo1的磷酸化,导致FoxO1稳定化。因此,Saha诱导基因组宽的H4乙酰化并调节胰岛素/ Akt / FoxO1信号轴,而促进体外的末端成骨细胞分化。

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