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Analysis of long-range interactions in primary human cells identifies cooperative CFTR regulatory elements

机译:对人类原代细胞中远距离相互作用的分析确定了协同CFTR调控元件

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A mechanism by which control DNA elements regulate transcription over large linear genomic distances is by achieving close physical proximity with genes, and looping of the intervening chromatin paths. Alterations of such regulatory 'chromatin looping' systems are likely to play a critical role in human genetic disease at large. Here, we studied the spatial organization of a a parts per thousand 790 kb locus encompassing the cystic fibrosis transmembrane conductance regulator (CFTR) gene. Dysregulation of CFTR is responsible for cystic fibrosis, which is the most common lethal genetic disorder in Caucasian populations. CFTR is a relatively large gene of 189 kb with a rather complex tissue-specific and temporal expression profile. We used chromatin conformation at the CFTR locus to identify new DNA sequences that regulate its transcription. By comparing 5C chromatin interaction maps of the CFTR locus in expressing and non-expressing human primary cells, we identified several new contact points between the CFTR promoter and its surroundings, in addition to regions featuring previously described regulatory elements. We demonstrate that two of these novel interacting regions cooperatively increase CFTR expression, and suggest that the new enhancer elements located on either side of the gene are brought together through chromatin looping via CTCF.
机译:控制DNA元件在较大的线性基因组距离上调节转录的机制是通过与基因的紧密物理接近以及中间染色质路径的循环实现。这种调节性的“染色质环化”系统的改变很可能在整个人类遗传疾病中发挥关键作用。在这里,我们研究了每千个790 kb位点的空间组织,其中包含囊性纤维化跨膜电导调节剂(CFTR)基因。 CFTR失调是造成囊性纤维化的原因,囊性纤维化是白种人人群中最常见的致死遗传疾病。 CFTR是一个189 kb的相对较大的基因,具有相当复杂的组织特异性和时间表达特征。我们在CFTR基因座上使用了染色质构象,以鉴定调节其转录的新DNA序列。通过比较在表达和未表达的人类原代细胞中CFTR基因座的5C染色质相互作用图谱,我们确定了CFTR启动子与其周围环境之间的几个新接触点,此外还有先前描述的调控元件。我们证明这两个新颖的相互作用区域合作增加CFTR表达,并建议位于基因两侧的新的增强子元素通过CTCF通过染色质环汇集在一起​​。

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