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Epigenetic control of the critical region for premature ovarian failure on autosomal genes translocated to the X chromosome: a hypothesis.

机译:早产卵巢功能衰竭关键区域的表观遗传控制:一个假设。

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Chromosomal rearrangements in Xq are frequently associated to premature ovarian failure (POF) and have contributed to define a POF "critical region" from Xq13.3 to Xq26. Search for X-linked genes responsible for the phenotype has been elusive as most rearrangements did not interrupt genes and many were mapped to gene deserts. We now report that ovary-expressed genes flanked autosomal breakpoints in four POF cases analyzed whose X chromosome breakpoints interrupted a gene poor region in Xq21, where no ovary-expressed candidate genes could be found. We also show that the global down regulation in the oocyte and up regulation in the ovary of X-linked genes compared to the autosomes is mainly due to genes in the POF "critical region". We thus propose that POF, in X;autosome balanced translocations, may not only be caused by haploinsufficiency, but also by a oocyte-specific position effect on autosomal genes, dependent on dosage compensation mechanisms operating on the active X chromosome in mammals.
机译:Xq中的染色体重排通常与卵巢早衰(POF)相关,并有助于定义从Xq13.3到Xq26的POF“关键区域”。由于大多数重排都不会中断基因,而且许多被定位到基因荒漠,因此寻找负责表型的X连锁基因一直是难以捉摸的。现在我们报告在四个POF病例中,卵巢表达的基因位于常染色体断裂点的两侧,这些病例的X染色体断裂点中断了Xq21中的基因贫乏区域,在该区域中未发现卵巢表达的候选基因。我们还显示,与常染色体相比,X连锁基因在卵母细胞中的整体下调和卵巢中的上调主要是由于POF“关键区域”中的基因。因此,我们提出,X染色体常染色体平衡易位的POF不仅可能由单倍体不足引起,而且还取决于卵母细胞对常染色体基因的位置效应,这取决于在哺乳动物中作用于活性X染色体的剂量补偿机制。

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