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首页> 外文期刊>Human Molecular Genetics >A mouse model of BBS identifies developmental and homeostatic effects of BBS5 mutation and identifies novel pituitary abnormalities
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A mouse model of BBS identifies developmental and homeostatic effects of BBS5 mutation and identifies novel pituitary abnormalities

机译:BBS的小鼠模型鉴定了BBS5突变的发育和稳态效应,并识别新颖的垂体异常

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Primary cilia are critical sensory and signaling compartments present on most mammalian cell types. These specialized structures require a unique signaling protein composition relative to the rest of the cell to carry out their functions. Defects in ciliary structure and signaling result in a broad group of disorders collectively known as ciliopathies. One ciliopathy, Bardet-Biedl syndrome (BBS; OMIM 209900), presents with diverse clinical features, many of which are attributed to defects in ciliary signaling during both embryonic development and postnatal life. For example, patients exhibit obesity, polydactyly, hypogonadism, developmental delay and skeletal abnormalities along with sensory and cognitive deficits, but for many of these phenotypes it is uncertain, which are developmental in origin. A subset of BBS proteins assembles into the core BBSome complex, which is responsible for mediating transport of membrane proteins into and out of the cilium, establishing it as a sensory and signaling hub. Here, we describe two new mouse models for BBS resulting from a targeted LacZ gene trap allele (Bbs5(-/-)) that is a predicted congenital null mutation and conditional (Bbs5(flox/flox)) allele of Bbs5. Bbs5(-/-) mice develop a complex phenotype consisting of increased pre-weaning lethality craniofacial and skeletal defects, ventriculomegaly, infertility and pituitary anomalies. Utilizing the conditional allele, we show that the male fertility defects, ventriculomegaly and pituitary abnormalities are only present when Bbs5 is disrupted prior to postnatal day 7, indicating a developmental origin. In contrast, mutation of Bbs5 results in obesity, independent of the age of Bbs5 loss.
机译:初级纤毛是存在于大多数哺乳动物细胞类型上的重要感觉和信号室。这些特殊的结构需要一种独特的信号蛋白组成,相对于细胞的其他部分来实现其功能。睫状体结构和信号传导的缺陷导致广泛的疾病,统称为睫状体病。一种睫状体病,Bardet-Biedl综合征(BBS;OMIM 209900),表现出不同的临床特征,其中许多可归因于胚胎发育和出生后生活中睫状体信号的缺陷。例如,患者表现出肥胖、多指畸形、性腺功能减退、发育迟缓和骨骼异常,以及感觉和认知缺陷,但对于其中许多表型来说,这是不确定的,它们是发育起源的。BBS蛋白的一个子集组装成核心BBSome复合物,该复合物负责介导膜蛋白进出纤毛的运输,将其建立为感觉和信号中枢。在这里,我们描述了两种新的BBS小鼠模型,它们是由靶向的LacZ基因陷阱等位基因(Bbs5(-/-)产生的,该等位基因是一种预测的先天性空突变和Bbs5的条件性(Bbs5(flox/flox))等位基因。Bbs5(-/-)小鼠发展出一种复杂的表型,包括断奶前死亡率增加、颅面和骨骼缺陷、脑室扩大、不孕和垂体异常。利用条件等位基因,我们表明,只有在出生后第7天之前Bbs5被破坏时,男性生育缺陷、脑室扩大和垂体异常才会出现,这表明其起源于发育。相比之下,Bbs5突变导致肥胖,与Bbs5缺失的年龄无关。

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