对含有多种发育调控因子的染色质结构域进行结构性扰乱,会严重影响基因调控和发育

Shreeta Chakraborty, Nina Wenzlitschke, Matthew J Anderson, Ariel Eraso, Manon Baudic, Joyce J Thompson, Alicia A Evans, Lilly M Shatford Adams, Raj Chari, Parirokh Awasthi, Ryan K Dale, Mark Lewandoski, Timothy J Petros, Pedro P Rocha
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摘要

由CTCF基序划定的染色质结构域边界可以限制增强子的作用范围。然而,结构域结构的破坏通常会导致轻微的基因失调,因此预测边界重排对动物发育的影响仍然具有挑战性。在这里,我们测试了具有多个发育调节因子的染色质结构域的结构扰动是否会导致更严重的基因失调和严重的发育表型。我们以小鼠基因组中含有三个 FGF 配体基因--Fgf3、Fgf4 和 Fgf15--的区域中的 CTCF 基因簇为目标,这些基因调控着多个发育过程。删除定义该域中心粒边界的 23.9kb 基因簇会导致 FGF 基因与位于删除边界上的增强子发生异位相互作用,而这些增强子在发育中的大脑中非常活跃。这导致了 FGF 表达的强烈诱导和围产期致死,并伴有颅裂和口裂表型。杂合子边界缺失足以导致这些全穿透表型,而且令人震惊的是,簇内单个 CTCF 矩阵的缺失也能重现异位 FGF 表达并导致颅裂。然而,这种对结构域结构扰动的表型敏感性并没有扩展到该结构域的所有 CTCF 簇,也没有扩展到这三个 FGF 基因控制的所有发育过程--例如,胚泡中的品系分化能力和植入前的发育都没有受到影响。通过追踪小鼠整个发育过程中不同染色体重排的影响,我们开始揭示表型稳健性的决定因素以及对染色质边界扰动的敏感性。我们的数据表明,某些结构域边界的微小序列变异会产生惊人的巨大影响,因此必须将其视为发育和疾病过程中基因失调的潜在来源。
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Structural perturbation of chromatin domains with multiple developmental regulators can severely impact gene regulation and development
Chromatin domain boundaries delimited by CTCF motifs can restrict the range of enhancer action. However, disruption of domain structure often results in mild gene dysregulation and thus predicting the impact of boundary rearrangements on animal development remains challenging. Here, we tested whether structural perturbation of a chromatin domain with multiple developmental regulators can result in more acute gene dysregulation and severe developmental phenotypes. We targeted clusters of CTCF motifs in a domain of the mouse genome containing three FGF ligand genes - Fgf3, Fgf4, and Fgf15 - that regulate several developmental processes. Deletion of the 23.9kb cluster that defines the centromeric boundary of this domain resulted in ectopic interactions of the FGF genes with enhancers located across the deleted boundary that are active in the developing brain. This caused strong induction of FGF expression and perinatal lethality with encephalocele and orofacial cleft phenotypes. Heterozygous boundary deletion was sufficient to cause these fully penetrant phenotypes, and strikingly, loss of a single CTCF motif within the cluster also recapitulated ectopic FGF expression and caused encephalocele. However, such phenotypic sensitivity to perturbation of domain structure did not extend to all CTCF clusters of this domain, nor to all developmental processes controlled by these three FGF genes - for example, the ability to undergo lineage specification in the blastocyst and pre-implantation development were not affected. By tracing the impact of different chromosomal rearrangements throughout mouse development, we start to uncover the determinants of phenotypic robustness and sensitivity to perturbation of chromatin boundaries. Our data show how small sequence variants at certain domain boundaries can have a surprisingly outsized effect and must be considered as potential sources of gene dysregulation during development and disease.
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