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      Machine Learning Prediction of ADHD Severity: Association and Linkage to ADGRL3, DRD4, and SNAP25

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          Abstract

          Objective:

          To investigate whether single nucleotide polymorphisms (SNPs) in the ADGRL3, DRD4, and SNAP25 genes are associated with and predict ADHD severity in families from a Caribbean community.

          Method:

          ADHD severity was derived using latent class cluster analysis of DSM-IV symptomatology. Family-based association tests were conducted to detect associations between SNPs and ADHD severity latent phenotypes. Machine learning algorithms were used to build predictive models of ADHD severity based on demographic and genetic data.

          Results:

          Individuals with ADHD exhibited two seemingly independent latent class severity configurations. SNPs harbored in DRD4, SNAP25, and ADGRL3 showed evidence of linkage and association to symptoms severity and a potential pleiotropic effect on distinct domains of ADHD severity. Predictive models discriminate severe from non-severe ADHD in specific symptom domains.

          Conclusion:

          This study supports the role of DRD4, SNAP25, and ADGRL3 genes in outlining ADHD severity, and a new prediction framework with potential clinical use.

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          Most cited references22

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          Controlling the False Discovery Rate: A Practical and Powerful Approach to Multiple Testing

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            Diagnostic and Statistical Manual of Mental Disorders

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                Author and article information

                Contributors
                (View ORCID Profile)
                (View ORCID Profile)
                Journal
                Journal of Attention Disorders
                J Atten Disord
                SAGE Publications
                1087-0547
                1557-1246
                May 19 2021
                : 108705472110154
                Affiliations
                [1 ]Universidad Simón Bolívar, Barranquilla, Colombia
                [2 ]Universidad del Norte, Barranquilla, Colombia
                [3 ]National Institutes of Health, Bethesda, MD, USA
                [4 ]Universidad de Antioquia, Medellín, Colombia
                [5 ]Universidad del Atlántico, Barranquilla, Colombia
                Article
                10.1177/10870547211015426
                34009035
                10f8aa35-c839-4345-a8f9-36cacd1afbd5
                © 2021

                http://journals.sagepub.com/page/policies/text-and-data-mining-license

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