Exons as units of phenotypic impact for truncating mutations in autism

表型 遗传学 生物 外显子 自闭症 先证者 基因 遗传异质性 自闭症遗传率 无义突变 等位基因异质性 无意义介导的衰变 突变 RNA剪接 医学 错义突变 精神科 核糖核酸
作者
Andrew H. Chiang,Jonathan Chang,Jiayao Wang,Dennis Vitkup
出处
期刊:Molecular Psychiatry [Springer Nature]
卷期号:26 (5): 1685-1695 被引量:8
标识
DOI:10.1038/s41380-020-00876-3
摘要

Autism spectrum disorders (ASD) are a group of related neurodevelopmental diseases displaying significant genetic and phenotypic heterogeneity. Despite recent progress in understanding ASD genetics, the nature of phenotypic heterogeneity across probands remains unclear. Notably, likely gene-disrupting (LGD) de novo mutations affecting the same gene often result in substantially different ASD phenotypes. Nevertheless, we find that truncating mutations affecting the same exon frequently lead to strikingly similar intellectual phenotypes in unrelated ASD probands. Analogous patterns are observed for two independent proband cohorts and several other important ASD-associated phenotypes. We find that exons biased toward prenatal and postnatal expression preferentially contribute to ASD cases with lower and higher IQ phenotypes, respectively. These results suggest that exons, rather than genes, often represent a unit of effective phenotypic impact for truncating mutations in autism. The observed phenotypic patterns are likely mediated by nonsense-mediated decay (NMD) of splicing isoforms, with autism phenotypes usually triggered by relatively mild (15–30%) decreases in overall gene dosage. We find that each ASD gene with recurrent mutations can be characterized by a parameter, phenotype dosage sensitivity (PDS), which quantifies the relationship between changes in a gene’s dosage and changes in a given disease phenotype. We further demonstrate analogous relationships between exon LGDs and gene expression changes in multiple human tissues. Therefore, similar phenotypic patterns may be also observed in other human genetic disorders.

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