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Whole Genome Analysis of Muscle Founder Cells Implicates the Chromatin Regulator Sin3A in Muscle Identity

机译:肌肉基础细胞的全基因组分析牵涉染色质调节剂Sin3A的肌肉身份。

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Skeletal muscles are formed in numerous shapes and sizes, and this diversity impacts function and disease susceptibility. To understand how muscle diversity is generated, we performed gene expression profiling of two muscle subsets from Drosophila embryos. By comparing the transcriptional profiles of these subsets, we identified a core group of founder cell-enriched genes. We screened mutants for muscle defects and identified functions for Sin3A and 10 other transcription and chromatin regulators in the Drosophila embryonic somatic musculature. Sin3A is required for the morphogenesis of a muscle subset, and Sin3A mutants display muscle loss and misattachment. Additionally, misexpression of identity gene transcription factors in Sin3A heterozygous embryos leads to direct transformations of one muscle into another, whereas overexpression of Sin3A results in the reverse transformation. Our data implicate Sin3A as a key buffer controlling muscle responsiveness to transcription factors in the formation of muscle identity, thereby generating tissue diversity.
机译:骨骼肌形成多种形状和大小,这种多样性影响功能和疾病易感性。为了了解如何产生肌肉多样性,我们对果蝇胚胎的两个肌肉亚群进行了基因表达谱分析。通过比较这些子集的转录图谱,我们确定了创始人细胞富集基因的核心组。我们筛选了突变的肌肉缺陷,并确定了果蝇胚胎体细胞肌肉组织中Sin3A和其他10种转录和染色质调节剂的功能。 Sin3A是肌肉子集的形态发生所必需的,Sin3A突变体显示出肌肉丢失和错位。此外,Sin3A杂合子胚胎中同一性基因转录因子的错误表达会导致一只肌肉直接转化为另一只肌肉,而Sin3A的过度表达会导致反向转化。我们的数据表明Sin3A作为控制肌肉对形成身份的肌肉中转录因子响应的关键缓冲区,从而产生组织多样性。

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