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Variants in DOCK3 cause developmental delay and hypotonia

机译:Dock3中的变体导致发育延迟和低呼吸症

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The D0CK3 gene encodes the Dedicator of cytokinesis 3 (DOCK3) protein, which belongs to the family of guanine nucleotide exchange factors and is expressed almost exclusively in the brain and spinal cord. We used whole exome sequencing (WES) to investigate the molecular cause of developmental delay and hypotonia in three unrelated probands. WES identified truncating and splice site variants in Patient 1 and compound heterozygous and homozygous missense variants in Patients 2 and 3, respectively. We studied the effect of the three missense variants in vitro by using site-directed mutagenesis and pull-down assay and show that the induction of Racl activation was significantly lower in DOCK3 mutant cells compared with wild type human DOCK3 (P < 0.05). We generated a protein model to further examine the effect of the two missense variants within or adjacent to the DHR-2 domain in DOCK3 and this model supports pathogenicity. Our results support a loss of function mechanism but the data on the patients with missense variants should be cautiously interpreted because of the variability of the phenotypes and limited number of cases. Prior studies have described DOCK3 bi-allelic loss of function variants in two families with ataxia, hypotonia, and developmental delay. Here, we report on three patients with DOCK3-related developmental delay, wide-based or uncoordinated gait, and hypotonia, further supporting DOCK3's role in a neurodevelopmental syndrome and expanding the spectrum of phenotypic and genotypic variability.
机译:D0CK3基因编码细胞因子3(Dock3)蛋白的专用物,属于鸟嘌呤核苷酸交换因子的家族,并且几乎完全在大脑和脊髓中表达。我们使用全外壳测序(WES)来研究三个无关的证据中发育延迟和肺炎的分子原因。 WES在患者1中鉴定截断和接头位点变体,分别分别在患者2和3例中复合杂合和纯合的致命的变异。我们通过使用现场定向的诱变和下拉测定来研究三种畸形变体的影响,并表明除了野生型人Dock3相比,Dock3突变细胞中Racl活化的诱导显着降低(P <0.05)。我们产生了蛋白质模型,进一步检查DOCK3中DHR-2结构域内或邻近DHR-2结构域内的两个畸形变体的效果,并且该模型支持致病性。我们的结果支持丧失功能机制,但由于表型的可变性和有限的情况,应谨慎地解释了致畸变体的患者的数据。先前的研究描述了两个家庭中的函数变体的Dock3双等等,并且具有共济失调,低呼吸道和发育延迟。在这里,我们报告了三个与Dock3相关发育延迟,广泛或未开展的步态和低醌的患者,进一步支持Dock3在神经发育综合征中的作用,并扩大表型和基因型变异性的频谱。

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