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Role of reverse phenotyping in interpretation of next generation sequencing data and a review of INPP5E related disorders

错义突变 外显子组测序 表型 生物 遗传学 人类遗传学 外显子组 生物信息学 张力减退 突变 计算生物学 智力残疾 基因
作者
Christian de Goede,Wyatt W. Yue,Guanhua Yan,Shyamala Ariyaratnam,Kate Chandler,Laura Downes,Nasaim Khan,Meyyammai Mohan,Martin Lowe,Siddharth Banka
出处
期刊:European Journal of Paediatric Neurology [Elsevier BV]
卷期号:20 (2): 286-295 被引量:37
标识
DOI:10.1016/j.ejpn.2015.11.012
摘要

Next Generation Sequencing (NGS) is a useful tool in diagnosis of rare disorders but the interpretation of data can be challenging in clinical settings. We present results of extended studies on a family of multiple members with global developmental delay and learning disability, where another research group postulated the underlying cause to be a homozygous RABL6 missense variant.Using data from the Exome Variant Server, we show that missense RABL6 variants are unlikely to cause early onset rare developmental disorder. Protein structural analysis, cellular functional studies and reverse phenotyping proved that the condition in this family is due to a homozygous INPP5E mutation. An in-depth review of mutational and phenotypic spectrum associated with INPP5E demonstrated that mutations in this gene lead to a range of cilliopathy-phenotypes.We use this study as an example to demonstrate the importance of careful clinical evaluation of multiple family members, reverse phenotyping, considering the unknown phenotypic variability of rare diseases, utilizing publically available genomic databases and conducting appropriate bioinformatics and functional studies while interpreting results from NGS in uncertain cases. We emphasize that interpretation of NGS data is an iterative process and its dynamic nature should be explained to patients and families. Our study shows that developmental delay, intellectual disability, hypotonia and ocular motor apraxia are common in INPP5E-related disorders and considerable intra-familial phenotypic variability is possible. We have compiled the INPP5E mutational spectrum and provided novel insights into their molecular mechanisms.

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