Estimating multimodal brain variability in schizophrenia spectrum disorders: A worldwide ENIGMA study
Omlor, W.; Rabe, F.; Fuchs, S.; Cecere, G.; Homan, S.; Surbeck, W.; Kallen, N.; Georgiadis, F.; Spiller, T.; Seifritz, E.; Weickert, T.; Bruggemann, J.; Weickert, C.; Potkin, S.; Hashimoto, R.; Sim, K.; Rootes-Murdy, K.; Quide, Y.; Houenou, J.; Banaj, N.; Vecchio, D.; Piras, F.; Piras, F.; Spalletta, G.; Salvador, R.; Karuk, A.; Pomarol-Clotet, E.; Rodrigue, A.; Pearlson, G.; Glahn, D.; Tomecek, D.; Spaniel, F.; Skoch, A.; Kirschner, M.; Kaiser, S.; Kochunov, P.; Fan, F.-M.; Andreassen, O.; Westlye, L. T. A.; Berthet, P.; Calhoun, V.; Howells, F. M.; Uhlmann, A.; Scheffler, F.; Stein, D.; Iase
Show abstract
ObjectiveSchizophrenia is a multifaceted disorder associated with structural brain heterogeneity. Despite its relevance for identifying illness subtypes and informative biomarkers, structural brain heterogeneity in schizophrenia remains incompletely understood. Therefore, the objective of this study was to provide a comprehensive insight into the structural brain heterogeneity associated with schizophrenia. MethodsThis meta- and mega-analysis investigated the variability of multimodal structural brain measures of white and gray matter in individuals with schizophrenia versus healthy controls. Using the ENIGMA dataset of MRI-based brain measures from 22 international sites with up to 6139 individuals for a given brain measure, we examined variability in cortical thickness, surface area, folding index, subcortical volume and fractional anisotropy. ResultsWe found that individuals with schizophrenia are distinguished by higher heterogeneity in the frontotemporal network with regard to multimodal structural measures. Moreover, individuals with schizophrenia showed higher homogeneity of the folding index, especially in the left parahippocampal region. ConclusionsHigher multimodal heterogeneity in frontotemporal regions potentially implies different subtypes of schizophrenia that converge on impaired frontotemporal interaction as a core feature of the disorder. Conversely, more homogeneous folding patterns in the left parahippocampal region might signify a consistent characteristic of schizophrenia shared across subtypes. These findings underscore the importance of structural brain variability in advancing our neurobiological understanding of schizophrenia, and aid in identifying illness subtypes as well as informative biomarkers.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Reassessing Asymmetry Reduction in Psychosis: Cingulate Folding and Gyrification Covariance in Patients with Auditory Hallucinations 97%
- A 10-Year Longitudinal Study of Brain Cortical Thickness in People with First-Episode Psychosis using Normative Models 97%
- Altered sex differences in hippocampal subfield volumes in schizophrenia 96%
Similar papers in this journal
Similar papers in this journal
- Grey and white matter micro-structure is associated with polygenic risk for schizophrenia 96%
- Cerebral cortical alterations in adolescent early-onset psychosis: a surface-based morphometry mega-analysis 96%
- Cortical and Subcortical Neuroanatomical Signatures of Schizotypy in 3,004 Individuals Assessed in a Worldwide ENIGMA Study 96%
Similar papers in this journal
- White Matter Microstructure Alterations and Their Link to Symptomatology in Early Psychosis and Schizophrenia 96%
- Individual-level deviations from normative brain morphology in violence, psychosis, and psychopathy 95%
- Pairwise genetic meta-analyses between schizophrenia and substance dependence phenotypes reveals novel association signals 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.