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在共线性Hox基因表达的基础:协调Hox基因簇激活初始阶段的顺式特征和反式因子

At the base of colinear Hox gene expression: cis-features and trans-factors orchestrating the initial phase of Hox cluster activation.

作者信息

Neijts Roel, Deschamps Jacqueline

机构信息

Hubrecht Institute, Developmental Biology and Stem Cell Research, Uppsalalaan 8, 3584 CT Utrecht, and UMC Utrecht, The Netherlands.

Hubrecht Institute, Developmental Biology and Stem Cell Research, Uppsalalaan 8, 3584 CT Utrecht, and UMC Utrecht, The Netherlands.

出版信息

Dev Biol. 2017 Aug 15;428(2):293-299. doi: 10.1016/j.ydbio.2017.02.009.

DOI:10.1016/j.ydbio.2017.02.009
PMID:28728680
Abstract

Hox genes are crucial players in the generation and pattering of the vertebrate trunk and posterior body during embryogenesis. Their initial expression takes place shortly after the establishment of the primitive streak, in the posterior-most part of the mouse embryo and is a determinant step for setting up the definitive Hox expression boundaries along the antero-posterior body axis. The developmental signals and epigenetic mechanisms underlying this early activation remained unsolved until recently. The development of novel embryo-derived model systems, combined with methods that examine chromatin status and chromosome conformation, led to deeper understanding of the process of Hox activation in the early embryo. Here we summarize how the early Hox cis-regulatory landscape becomes active upon receiving the appropriate developmental signal, and we discuss the importance of the local topological segmentation of the HoxA cluster during early Hox activation.

摘要

Hox基因是胚胎发育过程中脊椎动物躯干和身体后部形成及模式化的关键参与者。它们最初的表达发生在原条形成后不久,位于小鼠胚胎的最后部,是沿着前后身体轴建立确定的Hox表达边界的决定性步骤。直到最近,这种早期激活背后的发育信号和表观遗传机制仍未得到解决。新型胚胎衍生模型系统的发展,结合检查染色质状态和染色体构象的方法,使人们对早期胚胎中Hox激活过程有了更深入的了解。在这里,我们总结了早期Hox顺式调控景观在接收到适当的发育信号后如何变得活跃,并讨论了早期Hox激活过程中HoxA簇局部拓扑分割的重要性。

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