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Rare genetic variants confer a high risk of ADHD and implicate neuronal biology
Ditte Demontis1,2,3,4, Jinjie Duan5,6,7, Yu-Han H Hsu8,9
1Department of Biomedicine-Human Genetics, Aarhus University, Aarhus, Denmark. ditte@biomed.au.dk.
Insights
Researchers identified three genes implicated in Attention Deficit Hyperactivity Disorder (ADHD) by analyzing rare genetic variants. These findings shed light on the genetic underpinnings of ADHD and its associated neurodevelopmental outcomes.
Area of Science:
- Neurogenetics
- Developmental Neuroscience
Background:
- Attention Deficit Hyperactivity Disorder (ADHD) is a prevalent neurodevelopmental disorder with a significant genetic basis.
- While common genetic variants are known, the role of rare variants in ADHD pathogenesis remains largely unexplored.
Purpose of the Study:
- To investigate the contribution of rare coding variants to ADHD risk.
- To identify novel genes associated with ADHD through exome sequencing.
Main Methods:
- Exome sequencing data analysis from 8,895 individuals with ADHD and 53,780 controls.
- Identification of rare coding variants and associated genes using statistical analysis (P < 3.07 × 10⁻⁶).
- Network analysis of identified genes and examination of gene expression patterns in brain tissues and cell types.
Main Results:
- Three genes (MAP1A, ANO8, ANK2) were significantly associated with ADHD risk (odds ratios 5.55-15.13).
- These genes' networks are enriched for risk genes in other neurodevelopmental disorders and involve cytoskeleton, synapse, and RNA processing.
- Deleterious variants correlated with lower socioeconomic status, education, and reduced IQ in adults with ADHD.
Conclusions:
- Rare variants in specific genes contribute significantly to ADHD risk and its associated neurodevelopmental and cognitive outcomes.
- The genetic architecture of psychiatric comorbidities in ADHD appears to be gene-specific rather than a general burden.
Abstract:
Attention deficit hyperactivity disorder (ADHD) is a childhood-onset neurodevelopmental disorder with a large genetic component1. It affects around 5% of children and 2.5% of adults2, and is associated with several severe outcomes3-11. Common genetic variants associated with the disorder have been identified12,13, but the role of rare variants in ADHD is mostly unknown. Here, by analysing rare coding variants in exome-sequencing data from 8,895 individuals with ADHD and 53,780 control individuals, we identify three genes (MAP1A, ANO8 and ANK2; P < 3.07 × 10-6; odds ratios 5.55-15.13) that are implicated in ADHD. The protein-protein interaction networks of these three genes were enriched for rare-variant risk genes of other neurodevelopmental disorders, and for genes involved in cytoskeleton organization, synapse function and RNA processing. Top associated rare-variant risk genes showed increased expression across pre- and postnatal brain developmental stages and in several neuronal cell types, including GABAergic (γ-aminobutyric-acid-producing) and dopaminergic neurons. Deleterious variants were associated with lower socioeconomic status and lower levels of education in individuals with ADHD, and a decrease of 2.25 intelligence quotient (IQ) points per rare deleterious variant in a sample of adults with ADHD (n = 962). Individuals with ADHD and intellectual disability showed an increased load of rare variants overall, whereas other psychiatric comorbidities had an increased load only for specific gene sets associated with those comorbidities. This suggests that psychiatric comorbidity in ADHD is driven mainly by rare variants in specific genes, rather than by a general increased load across constrained genes.
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