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A new deletion refines the boundaries of the murine Prader-Willi syndrome imprinting center.

机译:一个新的删除完善了小鼠Prader-Willi综合征印记中心的边界。

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摘要

The human chromosomal 15q11-15q13 region is subject to both maternal and paternal genomic imprinting. Absence of paternal gene expression from this region results in Prader-Willi syndrome (PWS), while absence of maternal gene expression leads to Angelman syndrome. Transcription of paternally expressed genes in the region depends upon an imprinting center termed the PWS-IC. Imprinting defects in PWS can be caused by microdeletions and the smallest commonly deleted region indicates that the PWS-IC lies within a region of 4.3 kb. The function and location of the PWS-IC is evolutionarily conserved, but delineation of the PWS-IC in mouse has proven difficult. The first targeted mutation of the PWS-IC, a deletion of 35 kb spanning Snrpn exon 1, exhibited a complete PWS-IC deletion phenotype. Pups inheriting this mutation paternally showed a complete loss of paternal gene expression and died neonatally. A reported deletion of 4.8 kb showed only a reduction in paternal gene expression and incomplete penetrance of neonatal lethality, suggesting that some PWS-IC function had been retained. Here, we report that a 6 kb deletion spanning Snrpn exon 1 exhibits a complete PWS-IC deletion phenotype. Pups inheriting this mutation paternally lack detectable expression of all PWS genes and paternal silencing of Ube3a, exhibit maternal DNA methylation imprints at Ndn and Mkrn3 and suffer failure to thrive leading to a fully penetrant neonatal lethality.
机译:人染色体15q11-15q13区域受母体和父体基因组印迹的影响。该区域缺少父亲基因表达会导致Prader-Willi综合征(PWS),而母亲基因表达的缺失会导致Angelman综合征。在该区域中父本表达的基因的转录取决于称为PWS-IC的印迹中心。 PWS中的印记缺陷可能是由微缺失引起的,最小的通常缺失的区域表示PWS-IC位于4.3 kb的区域内。 PWS-IC的功能和位置在进化上是保守的,但事实证明在小鼠中描绘PWS-IC很困难。 PWS-IC的第一个靶向突变,即跨越Snrpn外显子1的35 kb缺失,表现出完整的PWS-IC缺失表型。父系遗传此突变的幼犬表现出父系基因表达的完全丧失并在新生儿中死亡。报道的4.8 kb的缺失仅显示了父亲基因表达的减少和新生儿致死性的不完全渗透,表明保留了某些PWS-IC功能。在这里,我们报告跨越Snrpn外显子1的6 kb删除表现出完整的PWS-IC删除表型。遗传了这种突变的幼仔在父系中缺乏可检测到的所有PWS基因表达和父本对Ube3a的沉默,在Ndn和Mkrn3上表现出母体DNA甲基化印记,并且无法壮成长,从而导致新生儿完全杀伤力。

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