Patches of disorganization in the neocortex of children with autism

Rich Stoner1, Maggie L Chow1, Maureen P Boyle1

  • 1University of California, San Diego, Autism Center of Excellence (R.S., M.L.C., M.P.B., E.C.), and the Departments of Neuroscience (R.S., M.L.C., M.P.B., S.R., E.C.) and Pathology (S.R.), University of California, San Diego, School of Medicine, La Jolla; Allen Institute for Brain Science, Seattle (M.P.B., S.M.S., E.S.L.); the Department of Pathology and Cell Biology, University of South Florida School of Medicine and Alzheimer's Institute and Research Center, Tampa (P.R.M.); the Department of Genetics and Genome Sciences, Case Western Reserve University School of Medicine, Cleveland (A.W.-B.); and the Department of Psychiatry and Behavioral Sciences, Stanford University School of Medicine, Palo Alto, CA (S.A.C.).

Insights

Autism is linked to early brain overgrowth and dysfunction. This study found focal disruptions in cortical architecture in young children with autism, suggesting prenatal developmental issues.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Autism Research

Background:

  • Autism is associated with early brain overgrowth and prefrontal cortex dysfunction.
  • Pathological analysis indicates an excess of neurons in children with autism, suggesting prenatal developmental disturbances.

Purpose of the Study:

  • To systematically examine neocortical architecture in early childhood following autism onset.
  • To investigate potential disturbances in cell type and laminar development in the autistic brain.

Main Methods:

  • RNA in situ hybridization used to phenotype cortical microstructure.
  • Assayed markers for neurons, glia, and autism risk genes in postmortem neocortical tissue (ages 2-15).
  • Examined prefrontal, temporal, and occipital cortical tissue from children with and without autism.

Main Results:

  • Focal patches of abnormal laminar cytoarchitecture and neuronal disorganization observed in 10/11 children with autism.
  • Abnormalities were found in prefrontal and temporal cortex, affecting layers 4 and 5 most clearly.
  • Heterogeneity in affected cell types and layers noted; glia were not affected.

Conclusions:

  • A majority of young children with autism exhibit focal disruption of cortical laminar architecture.
  • Findings suggest dysregulation in prenatal layer formation and layer-specific neuronal differentiation.
  • Supports a neurodevelopmental origin of autism affecting cortical development.
Abstract

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