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Reciprocal white matter alterations due to 16p11.2 chromosomal deletions versus duplications
Authors:Nicholas J. Pojman  Tony Thieu  Polina Bukshpun  Mari L.J. Wakahiro  Elysa J. Marco  Jeffrey I. Berman  John E. Spiro  Wendy K. Chung  Randy L. Buckner  Timothy P.L. Roberts  Srikantan S. Nagarajan  Elliott H. Sherr  Pratik Mukherjee
Affiliation:1. Department of Neurology, University of California, San Francisco, San Francisco, California;2. Department of Radiology, Children's Hospital of Philadelphia, Philadelphia, Pennsylvania;3. Simons Foundation, New York, New York;4. Departments of Pediatrics and Medicine, Columbia University Medical Center, New York, New York;5. Center for Brain Science, Harvard University, Cambridge, Massachusetts;6. Department of Radiology and Biomedical Imaging, University of California, San Francisco, San Francisco, California;7. Program in Bioengineering, University of California, San Francisco, San Francisco, California
Abstract:Copy number variants at the 16p11.2 chromosomal locus are associated with several neuropsychiatric disorders, including autism, schizophrenia, bipolar disorder, attention‐deficit hyperactivity disorder, and speech and language disorders. A gene dosage dependence has been suggested, with 16p11.2 deletion carriers demonstrating higher body mass index and head circumference, and 16p11.2 duplication carriers demonstrating lower body mass index and head circumference. Here, we use diffusion tensor imaging to elucidate this reciprocal relationship in white matter organization, showing widespread increases of fractional anisotropy throughout the supratentorial white matter in pediatric deletion carriers and, in contrast, extensive decreases of white matter fractional anisotropy in pediatric and adult duplication carriers. We find associations of these white matter alterations with cognitive and behavioral impairments. We further demonstrate the value of imaging metrics for characterizing the copy number variant phenotype by employing linear discriminant analysis to predict the gene dosage status of the study subjects. These results show an effect of 16p11.2 gene dosage on white matter microstructure, and further suggest that opposite changes in diffusion tensor imaging metrics can lead to similar cognitive and behavioral deficits. Given the large effect sizes found in this study, our results support the view that specific genetic variations are more strongly associated with specific brain alterations than are shared neuropsychiatric diagnoses. Hum Brain Mapp 37:2833–2848, 2016. © 2016 Wiley Periodicals, Inc.
Keywords:autism  genetics  magnetic resonance imaging  neurodevelopmental disorders  white matter
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