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Two modes of transvection at the eyes absent gene of Drosophila demonstrate plasticity in transcriptional regulatory interactions in cis and in trans

机译:果蝇基因处的两种对流模式表明,在 cis trans 中的转录调节相互作用中具有可塑性。

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For many genes, proper gene expression requires coordinated and dynamic interactions between multiple regulatory elements, each of which can either promote or silence transcription. In Drosophila , the complexity of the regulatory landscape is further complicated by the tight physical pairing of homologous chromosomes, which can permit regulatory elements to interact in trans , a phenomenon known as transvection. To better understand how gene expression can be programmed through cis- and trans- regulatory interactions, we analyzed transvection effects for a collection of alleles of the eyes absent ( eya ) gene. We find that trans -activation of a promoter by the eya eye-specific enhancers is broadly supported in many allelic backgrounds, and that the availability of an enhancer to act in trans can be predicted based on the molecular lesion of an eya allele. Furthermore, by manipulating promoter availability in cis and in trans , we demonstrate that the eye-specific enhancers of eya show plasticity in their promoter preference between two different transcriptional start sites, which depends on promoter competition between the two potential targets. Finally, we show that certain alleles of eya demonstrate pairing-sensitive silencing resulting from trans -interactions between Polycomb Response Elements (PREs), and genetic and genomic data support a general role for PcG proteins in mediating transcriptional silencing at eya . Overall, our data highlight how eya gene regulation relies upon a complex but plastic interplay between multiple enhancers, promoters, and PREs. Author summary Gene regulation requires interactions between regions of DNA known as regulatory elements, which, in combination, determine where and when a gene will be active or silenced. Some genes use just a few regulatory elements, whereas others rely on highly complex interactions between many different elements that are poorly understood. While we typically imagine regulatory elements interacting with one another along the length of a single chromosome, in a curious phenomenon called transvection, elements can communicate between two different chromosomes that are held in close proximity. Here, we use the study of transvection to better understand how different regulatory elements contribute to the expression of eyes absent ( eya ), a gene required for proper eye development in Drosophila . Our data show that a class of elements that initiate eya gene expression, called promoters, will compete with one another for activation by eya ’s enhancers, a second class of regulatory element, with the promoter that is closest to the enhancers being the favored target for activation. Furthermore, our study of transvection uncovers an important role for a silencing element, called a PRE, in opposing eya gene expression. Overall, our study sheds new light on how different elements combine to produce patterned expression of eya .
机译:对于许多基因,正确的基因表达需要多个调控元件之间的协调和动态相互作用,每个调控元件都可以促进或沉默转录。在果蝇中,调控染色体的复杂性由于同源染色体的紧密物理配对而变得更加复杂,这可以使调控元件进行反式相互作用,这种现象称为对流。为了更好地理解如何通过顺式和反式调节相互作用来编程基因表达,我们分析了横穿效应对缺乏基因(eya)的眼睛等位基因的集合。我们发现,在许多等位基因背景中,广泛支持了由eya眼特异性增强子启动子的反式激活,并且可以基于eya等位基因的分子病变来预测增强子以反式作用的可用性。此外,通过操纵顺式和反式启动子的可用性,我们证明了eya的眼特异性增强子在两个不同转录起始位点之间的启动子偏好中显示可塑性,这取决于两个潜在靶标之间的启动子竞争。最后,我们显示了eya的某些等位基因表现出了由多梳响应元件(PRE)之间的反式相互作用引起的配对敏感沉默,并且遗传和基因组数据支持PcG蛋白在介导eya转录沉默方面的一般作用。总体而言,我们的数据强调了eya基因调控如何依赖于多个增强子,启动子和PREs之间复杂但可塑性的相互作用。作者摘要基因调控需要DNA区域之间的相互作用,即调控元件,这些相互作用共同决定了基因在何时何地被激活或沉默。一些基因仅使用一些调控元件,而另一些基因则依赖于许多鲜为人知的不同元件之间的高度复杂的相互作用。尽管我们通常会想象调节元件沿单个染色体的长度相互交互,但在一种称为“对转”的奇怪现象中,元件可以在两个紧密相邻的不同染色体之间进行通信。在这里,我们使用对流转移的研究来更好地了解不同调控元件如何促进无果蝇(eya)的表达,这是果蝇正常眼部发育所需的基因。我们的数据显示,启动eya基因表达的一类元件,称为启动子,将相互竞争,被eya的增强子(第二类调控元件)激活,而最接近增强子的启动子成为受青睐的靶标。用于激活。此外,我们的对流转移研究揭示了沉默分子在反对eya基因表达中的重要作用。总体而言,我们的研究为不同元素如何组合以产生图案化的eya提供了新的思路。

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