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Biallelic mutations in nucleoporin NUP88 cause lethal fetal akinesia deformation sequence

机译:核孔蛋白NUP88中的双等位基因突变导致致命的胎儿运动障碍变形序列

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摘要

Nucleoporins build the nuclear pore complex (NPC), which, as sole gate for nuclear-cytoplasmic exchange, is of outmost importance for normal cell function. Defects in the process of nucleocytoplasmic transport or in its machinery have been frequently described in human diseases, such as cancer and neurodegenerative disorders, but only in a few cases of developmental disorders. Here we report biallelic mutations in the nucleoporin NUP88 as a novel cause of lethal fetal akinesia deformation sequence (FADS) in two families. FADS comprises a spectrum of clinically and genetically heterogeneous disorders with congenital malformations related to impaired fetal movement. We show that genetic disruption of nup88 in zebrafish results in pleiotropic developmental defects reminiscent of those seen in affected human fetuses, including locomotor defects as well as defects at neuromuscular junctions. Phenotypic alterations become visible at distinct developmental stages, both in affected human fetuses and in zebrafish, whereas early stages of development are apparently normal. The zebrafish phenotypes caused by nup88 deficiency are rescued by expressing wild-type Nup88 but not the disease-linked mutant forms of Nup88. Furthermore, using human and mouse cell lines as well as immunohistochemistry on fetal muscle tissue, we demonstrate that NUP88 depletion affects rapsyn, a key regulator of the muscle nicotinic acetylcholine receptor at the neuromuscular junction. Together, our studies provide the first characterization of NUP88 in vertebrate development, expand our understanding of the molecular events causing FADS, and suggest that variants in NUP88 should be investigated in cases of FADS.
机译:核蛋白形成核孔复合物(NPC),它是核细胞质交换的唯一通道,对正常细胞功能至关重要。在诸如癌症和神经退行性疾病的人类疾病中,经常描述了核质运输过程或其机械中的缺陷,但仅在少数几种发育性疾病中。在这里,我们报告在核孔蛋白NUP88中的双等位基因突变是两个家族中致命的胎儿运动障碍变形序列(FADS)的新原因。 FADS包括一系列临床和遗传异质性疾病,伴有与胎儿运动受损有关的先天性畸形。我们显示,斑马鱼中nup88的基因破坏导致多效性发育缺陷,使人想起在受影响的人类胎儿中所见的缺陷,包括运动缺陷以及神经肌肉接头处的缺陷。在受影响的胎儿和斑马鱼的不同发育阶段,表型改变变得明显,而发育的早期阶段显然是正常的。通过表达野生型Nup88可以拯救由nup88缺乏引起的斑马鱼表型,但不能表达疾病相关的Nup88突变体形式。此外,使用人类和小鼠细胞系以及胎儿肌肉组织的免疫组织化学,我们证明NUP88耗竭会影响rapsyn,rapsyn是神经烟碱连接处的肌肉烟碱乙酰胆碱受体的关键调节剂。总之,我们的研究提供了NUP88在脊椎动物发育中的第一个特征,扩展了我们对引起FADS的分子事件的理解,并建议在FADS的情况下应研究NUP88中的变异。

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