Predicting depression risk in early adolescence via multimodal brain imaging.

Neuroimage Clin

Department of Neurology and Neurosurgery, McGill University, Montreal, Quebec, Canada.

Published: June 2024

AI Article Synopsis

  • Depression is a significant psychiatric disorder, particularly riskier during adolescence, especially for children with a family history of depression.
  • Early identification of pre-adolescent children at risk is crucial for timely intervention and prevention efforts.
  • This study utilized a large longitudinal sample from the ABCD Study, employing advanced machine learning on neuroimaging data to predict depression risk, particularly finding rest-fMRI features most effective in identifying high-risk individuals.

Article Abstract

Depression is an incapacitating psychiatric disorder with increased risk through adolescence. Among other factors, children with family history of depression have significantly higher risk of developing depression. Early identification of pre-adolescent children who are at risk of depression is crucial for early intervention and prevention. In this study, we used a large longitudinal sample from the Adolescent Brain Cognitive Development (ABCD) Study (2658 participants after imaging quality control, between 9-10 years at baseline), we applied advanced machine learning methods to predict depression risk at the two-year follow-up from the baseline assessment, using a set of comprehensive multimodal neuroimaging features derived from structural MRI, diffusion tensor imaging, and task and rest functional MRI. Prediction performance underwent a rigorous cross-validation method of leave-one-site-out. Our results demonstrate that all brain features had prediction scores significantly better than expected by chance, with brain features from rest-fMRI showing the best classification performance in the high-risk group of participants with parental history of depression (N = 625). Specifically, rest-fMRI features, which came from functional connectomes, showed significantly better classification performance than other brain features. This finding highlights the key role of the interacting elements of the connectome in capturing more individual variability in psychopathology compared to measures of single brain regions. Our study contributes to the effort of identifying biological risks of depression in early adolescence in population-based samples.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11015491PMC
http://dx.doi.org/10.1016/j.nicl.2024.103604DOI Listing

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