Reporter CRISPR screens decipher cis-regulatory and trans-regulatory principles at the Xist locus.

Till Schwämmle,Gemma Noviello,Eleni Kanata,Jonathan J Froehlich,Melissa Bothe,Alexandra Martitz,Aybuge Altay,Jade Scouarnec,Vivi-Yun Feng,Heleen Mallie,Martin Vingron,Edda G Schulz
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Abstract

Developmental genes are controlled by an ensemble of cis-acting regulatory elements (REs), which in turn respond to multiple trans-acting transcription factors (TFs). Understanding how a cis-regulatory landscape integrates information from many dynamically expressed TFs has remained a challenge. Here we develop a combined CRISPR screening approach using endogenous RNA and RE reporters as readouts. Applied to the murine Xist locus, which is crucial for X-chromosome inactivation in females, this method allows us to comprehensively identify Xist-controlling TFs and map their TF-RE wiring. We find a group of transiently upregulated TFs, including ZIC3, that regulate proximal REs, driving the binary activation of Xist expression. These basal activators are more highly expressed in cells with two X chromosomes, potentially governing female-specific Xist upregulation. A second set of developmental TFs that include OTX2 is upregulated later during differentiation and targets distal REs. This regulatory axis is crucial to achieve high levels of Xist RNA, which is necessary for X-chromosome inactivation. OCT4 emerges as the strongest activator overall, regulating both proximal and distal elements. Our findings support a model for developmental gene regulation, in which factors targeting proximal REs drive binary on-off decisions, whereas factors interacting with distal REs control the transcription output.
报道型CRISPR筛选破译了Xist位点的顺式调控和跨式调控原理。
发育基因由一系列顺式作用调控元件(REs)控制,这些元件反过来对多个反式作用转录因子(TFs)作出反应。理解顺式监管环境如何整合来自许多动态表达的tf的信息仍然是一个挑战。在这里,我们开发了一种结合CRISPR筛选方法,使用内源性RNA和RE报告基因作为读数。将该方法应用于小鼠Xist位点,该位点对雌性x染色体失活至关重要,使我们能够全面鉴定控制Xist的tf并绘制其TF-RE接线。我们发现一组瞬时上调的tf,包括ZIC3,调节近端REs,驱动Xist表达的二元激活。这些基础激活因子在具有两条X染色体的细胞中表达更高,可能控制女性特异性的Xist上调。包括OTX2在内的第二组发育tf在分化后期被上调,并靶向远端res。这一调节轴对于实现高水平的Xist RNA至关重要,这是x染色体失活所必需的。总的来说,OCT4是最强的激活剂,调节近端和远端元件。我们的研究结果支持了一个发育基因调控模型,其中靶向近端REs的因子驱动二元开关决定,而与远端REs相互作用的因子控制转录输出。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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