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Maternal pluripotency factors initiate extensive chromatin remodelling to predefine first response to inductive signals

机译:母体多能因因子引发广泛的染色质重塑,以预定偏见对电感信号的响应

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Embryonic development yields many different cell types in response to just a few families of inductive signals. The property of signal-receiving cells that determines how they respond to inductive signals is known as competence, and it differs in different cell types. Here, we explore the ways in which maternal factors modify chromatin to specify initial competence in the frog Xenopus tropicalis. We identify early-engaged regulatory DNA sequences, and infer from them critical activators of the zygotic genome. Of these, we show that the pioneering activity of the maternal pluripotency factors Pou5f3 and Sox3 determines competence for germ layer formation by extensively remodelling compacted chromatin before the onset of inductive signalling. This remodelling includes the opening and marking of thousands of regulatory elements, extensive chromatin looping, and the co-recruitment of signal-mediating transcription factors. Our work identifies significant developmental principles that inform our understanding of how pluripotent stem cells interpret inductive signals.
机译:胚胎发育产生许多不同的细胞类型,以响应几个归纳信号。信号接收单元的属性确定它们如何响应感应信号被称为能力,并且它在不同的细胞类型中不同。在这里,我们探讨母体因素修饰染色质的方式,以指定青蛙Xenopustropicalis的初始能力。我们识别早期接触的调节DNA序列,并从它们的临界激活因子推断出闭合基因组。其中,我们表明,母体多能因因子POU5F3和SOX3的开创性活动通过在感应信号传导前进行了广泛改造了压制的染色质来,通过广泛改造压制的染色质来确定种质层的能力。这种重塑包括成千上万的调节元件,广泛的染色质循环和信号介导转录因子的共同募集的开口和标记。我们的工作确定了重要的发展原则,以了解我们对多能干细胞如何解释感应信号的理解。

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