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印记域染色体结构的等位基因特异性畸变与巨大胎儿综合征相关。

Allele-specific aberration of imprinted domain chromosome architecture associates with large offspring syndrome.

作者信息

Li Yahan, Boadu Frimpong, Highsmith Max R, Hagen Darren E, Cheng Jianlin, Rivera Rocío Melissa

机构信息

Division of Animal Sciences, University of Missouri, Columbia, MO 65211, USA.

Department of Electrical Engineering and Computer Science, University of Missouri, Columbia, MO 65211, USA.

出版信息

iScience. 2022 Apr 20;25(5):104269. doi: 10.1016/j.isci.2022.104269. eCollection 2022 May 20.

Abstract

Large offspring syndrome (LOS) and Beckwith-Wiedemann syndrome are similar epigenetic congenital overgrowth conditions in ruminants and humans, respectively. We have reported global loss-of-imprinting, methylome epimutations, and gene misregulation in LOS. However, less than 4% of gene misregulation can be explained with short range (<20kb) alterations in DNA methylation. Therefore, we hypothesized that methylome epimutations in LOS affect chromosome architecture which results in misregulation of genes located at distances >20kb in cis and in trans (other chromosomes). Our analyses focused on two imprinted domains that frequently reveal misregulation in these syndromes, namely KvDMR1 and . Using bovine fetal fibroblasts, we identified CTCF binding at imprinting control region but not KvDMR1, and allele-specific chromosome architecture of these domains in controls. In LOS, analyses identified erroneous long-range contacts and clustering tendency in the direction of expression of misregulated genes. In conclusion, altered chromosome architecture is associated with LOS.

摘要

大后代综合征(LOS)和贝克威思-维德曼综合征分别是反刍动物和人类中类似的表观遗传先天性过度生长病症。我们已经报道了LOS中的全基因组印记丢失、甲基化组表观突变和基因失调。然而,不到4%的基因失调可以用DNA甲基化的短程(<20kb)改变来解释。因此,我们假设LOS中的甲基化组表观突变会影响染色体结构,从而导致顺式和反式(其他染色体)中距离>20kb的基因失调。我们的分析集中在两个在这些综合征中经常显示失调的印记结构域,即KvDMR1和 。使用牛胎儿成纤维细胞,我们在印记控制区域而非KvDMR1处鉴定到了CTCF结合,以及这些结构域在对照中的等位基因特异性染色体结构。在LOS中,分析鉴定出了错误的长程接触以及在失调基因表达方向上的聚类倾向。总之,染色体结构改变与LOS相关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbe0/9079005/538bc20dae65/fx1.jpg

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