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一种与严重婴儿癫痫性脑病、严重发育迟缓及精神运动发育迟缓相关的新型纯合 PIGO 突变:结构与 3D 建模研究及基因型-表型相关性。

A novel homozygous PIGO mutation associated with severe infantile epileptic encephalopathy, profound developmental delay and psychomotor retardation: structural and 3D modelling investigations and genotype-phenotype correlation.

机构信息

Molecular Genetics and Functional Laboratory, Faculty of Sciences of Sfax, University of Sfax, Sfax, Tunisia.

Pediatrics Department, Hedi Chaker University Hospital, 3029, Sfax, Tunisia.

出版信息

Metab Brain Dis. 2023 Dec;38(8):2665-2678. doi: 10.1007/s11011-023-01276-6. Epub 2023 Sep 1.

Abstract

The PIGO gene encodes the GPI-ethanolamine phosphate transferase 3, which is crucial for the final synthetic step of the glycosylphosphatidylinositol-anchor serving to attach various proteins to their cell surface. These proteins are intrinsic for normal neuronal and embryonic development. In the current research work, a clinical investigation was conducted on a patient from a consanguineous family suffering from epileptic encephalopathy, characterized by severe seizures, developmental delay, hypotonia, ataxia and hyperphosphatasia. Molecular analysis was performed using Whole Exome Sequencing (WES). The molecular investigation revealed a novel homozygous variant c.1132C > T in the PIGO gene, in which a highly conserved Leucine was changed to a Phenylalanine (p.L378F). To investigate the impact of the non-synonymous mutation, a 3D structural model of the PIGO protein was generated using the AlphaFold protein structure database as a resource for template-based tertiary structure modeling. A structural analysis by applying some bioinformatic tools on both variants 378L and 378F models predicted the pathogenicity of the non-synonymous mutation and its potential functional and structural effects on PIGO protein. We also discussed the phenotypic and genotypic variability associated with the PIGO deficiency. To our best knowledge, this is the first report of a patient diagnosed with infantile epileptic encephalopathy showing a high elevation of serum alkaline phosphatase level. Our findings, therefore, widen the genotype and phenotype spectrum of GPI-anchor deficiencies and broaden the cohort of patients with PIGO associated epileptic encephalopathy with an elevated serum alkaline phosphatase level.

摘要

PIGO 基因编码糖基磷脂酰肌醇-乙醇胺磷酸转移酶 3,该酶对于将各种蛋白质附着到其细胞表面的糖基磷脂酰肌醇锚的最终合成步骤至关重要。这些蛋白质对于正常的神经元和胚胎发育是内在的。在当前的研究工作中,对来自患有癫痫性脑病的近亲家庭的患者进行了临床研究,该疾病的特征是严重的癫痫发作、发育迟缓、肌张力低下、共济失调和高磷酸酶血症。使用全外显子组测序(WES)进行分子分析。分子研究发现 PIGO 基因中的一个新的纯合变异 c.1132C>T,其中高度保守的亮氨酸被苯丙氨酸取代(p.L378F)。为了研究非同义突变的影响,使用 AlphaFold 蛋白质结构数据库作为模板的三级结构建模资源,生成了 PIGO 蛋白质的 3D 结构模型。通过对 378L 和 378F 模型变体应用一些生物信息学工具进行结构分析,预测了非同义突变的致病性及其对 PIGO 蛋白质的潜在功能和结构影响。我们还讨论了与 PIGO 缺乏相关的表型和基因型变异性。据我们所知,这是首例诊断为婴儿癫痫性脑病且血清碱性磷酸酶水平升高的患者报告。因此,我们的发现拓宽了 GPI-锚缺乏症的基因型和表型谱,并扩大了伴有血清碱性磷酸酶升高的 PIGO 相关癫痫性脑病患者的队列。

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