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Silencing Histone Deacetylase–Specific Isoforms Enhances Expression of Pluripotency Genes in Bovine Fibroblasts

机译:沉默组蛋白脱乙酰基酶的特定同工型可增强牛成纤维细胞中多能性基因的表达

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摘要

Histone deacetylases (HDACs) catalyze deacetylation of histones that results in altered transcriptional activity. Inhibitors of HDACs have been shown to induce transcriptional changes that contribute positively to reprogramming somatic cells either by nuclear transfer or inducing a pluripotent state. However, the exact molecular mechanisms whereby HDAC inhibitors function and the specificity of the HDAC isoforms in cell reprogramming are not yet fully understood. Herein, we report the ability of individual isoform-specific HDACs to modulate endogenous expression of pluripotency-associated genes in bovine somatic cells. This in vitro study showed that a transient selective depletion of HDACs resulted in elevated mRNA levels of Oct-4, Sox2, and Nanog. In particular, we found that inhibition of specific HDAC isoforms using small interfering (si) RNA significantly increased expression of Nanog, a key factor required for totipotency induced by somatic cell nuclear transfer and for maintaining pluripotency in embryonic and induced pluripotent stem cells. Our study suggests that this gene might be the most susceptible to HDAC activity inhibition. Moreover, a regulatory role of the class III HDAC, SIRT3, on an Oct4–Sox2–Nanog transcriptional network was revealed. We observed the upregulation of pluripotency-related genes by depletion of SIRT3. SIRT3 is localized to mitochondria and is associated with energy metabolism processes, suggesting metabolic changes may be linked to reprogramming in bovine fibroblasts. In conclusion, we show that targeting selective HDACs can potentially be useful to enhance reprogramming and that sirtuins may play a pivotal role in somatic cell reprogramming by upregulating an Oct4–Sox2–Nanog transcriptional network. Dedifferentiating donor somatic cells by upregulating developmentally important genes through specific knockdown of epigenetic targets, in particular HDACs, may provide a path to improving livestock cloning and the in vitro production of pluripotent cells.
机译:组蛋白脱乙酰基酶(HDAC)催化组蛋白的脱乙酰基作用,从而导致转录活性改变。已经显示出HDAC的抑制剂诱导转录改变,其通过核转移或诱导多能性状态对重编程体细胞具有积极作用。但是,还没有完全了解HDAC抑制剂起作用的确切分子机制以及HDAC同工型在细胞重编程中的特异性。在这里,我们报告了个体同工型特异性HDAC调节牛体细胞多能相关基因的内源性表达的能力。这项体外研究表明,HDAC的瞬时选择性消耗导致Oct-4,Sox2和Nanog的mRNA水平升高。特别是,我们发现使用小的干扰(si)RNA抑制特定的HDAC同工型显着增加了Nanog的表达,Nanog是由体细胞核转移诱导的全能性以及在胚胎和诱导性多能干细胞中维持多能性的关键因素。我们的研究表明,该基因可能是最容易受到HDAC活性抑制的基因。此外,还揭示了III类HDAC SIRT3在Oct4-Sox2-Nanog转录网络中的调控作用。我们观察到SIRT3耗竭导致多能性相关基因的上调。 SIRT3定位于线粒体,并且与能量代谢过程有关,这表明代谢变化可能与牛成纤维细胞的重编程有关。总之,我们表明靶向选择性HDACs可能对增强重编程具有潜在作用,并且沉默调节蛋白可能通过上调Oct4–Sox2–Nanog转录网络在体细胞重编程中发挥关键作用。通过表观遗传学靶标,特别是HDAC的特异性敲低,通过上调重要的发育基因来解体供体体细胞,可能为改善家畜克隆和多能细胞的体外生产提供一条途径。

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