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首页> 外文期刊>Biochimica et Biophysica Acta. Gene Regulatory Mechanisms >Chromatin dynamics regulate mesenchymal stem cell lineage specification and differentiation to osteogenesis
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Chromatin dynamics regulate mesenchymal stem cell lineage specification and differentiation to osteogenesis

机译:染色质动力学调节间充质干细胞谱系规范和分化与骨质发生

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Multipotent mesenchymal stromal cells (MSCs) are critical for regeneration of multiple tissues. Epigenetic mechanisms are fundamental regulators of lineage specification and cell fate, and as such, we addressed the question of which epigenetic modifications characterize the transition of nascent MSCs to a tissue specific MSC-derived phenotype. By profiling the temporal changes of seven histone marks correlated to gene expression during proliferation, early commitment, matrix deposition, and mineralization stages, we identified distinct epigenetic mechanisms that regulate transcriptional programs necessary for tissue-specific phenotype development. Patterns of stage-specific enrichment of histone modifications revealed distinct modes of repression and activation of gene expression that would not be detected using single endpoint analysis. We discovered that at commitment, H3K27me3 is removed from genes that are upregulated and is not acquired on downregulated genes. Additionally, we found that the absence of H3K4me3 modification at promoters defined a subset of osteoblastspecific upregulated genes, indicating that acquisition of acetyl modifications drive activation of these genes. Significantly, loss or gain of H3K36me3 was the primary predictor of dynamic changes in temporal gene expression. Using unsupervised pattern discovery analysis the signature of osteogenic-related histone modifications identified novel functional cis regulatory modules associated with enhancer regions that control tissue-specific genes. Our work provides a cornerstone to understand the epigenetic regulation of transcriptional programs that are important for MSC lineage commitment and lineage, as well as insights to facilitate MSC-based therapeutic interventions. (C) 2017 Published by Elsevier B.V.
机译:多能的间充质基质细胞(MSCs)对于多种组织的再生至关重要。表观遗传机制是谱系统规范和细胞命运的基本调节因素,因此,我们解决了表观遗传修饰的问题,表征了将新生MSC的转变为组织特异性MSC衍生的表型。通过分析七种组蛋白标记的时间变化与增殖,早期承诺,基质沉积和矿化阶段相关的七种组蛋白标记,我们鉴定了不同的表观遗传机制,其调节组织特异性表型发育所需的转录方案。组蛋白修饰的阶段特异性富集的模式显示出使用单端点分析不会检测到未检测到的基因表达的明显抑制和激活。我们发现,在承诺时,从上调的基因中除去H3K27ME3,并未在下调基因上获得。此外,我们发现,在启动子上没有H3K4ME3改性定义了骨胚细胞特异性上调基因的子集,表明获取乙酰基修改的乙酰基改变驱动这些基因的激活。显着地,H3K36ME3的损失或增益是时间基因表达的动态变化的主要预测因子。使用无监督模式发现分析鉴定了与控制组织特异性基因的增强子区域相关的骨质发生相关的组蛋白修饰的签名。我们的工作提供了一个基石,了解对MSC血统承诺和血统的重要性方案的表观遗传调节,以及促进基于MSC的治疗性干预措施的见解。 (c)2017年由Elsevier B.V发布。

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