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Brain Connectivity Is Disrupted in Schizophrenia
- October 26, 2023
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Disruptions develop with diagnosed disease according to a new study published in Biological Psychiatry: Cognitive Neuroscience and Neuroimaging.
Schizophrenia, a neurodevelopmental disorder that features psychosis among its symptoms, is thought to arise from disorganization in brain connectivity and functional integration. Now, a new study(opens in new tab/window) in Biological Psychiatry: Cognitive Neuroscience and Neuroimaging(opens in new tab/window), published by Elsevier, finds differences in functional brain connectivity in people with and without psychosis and schizophrenia that could help researchers understand the neural underpinnings of this disease.
The brain’s cortex is organized in a hierarchical fashion, anchored by the sensorimotor cortex at one end and by multimodal association areas at the other, with the task of integrating incoming sensory information with internal and external sensory signals. The loss of executive control in schizophrenia may stem from disruption of this hierarchical signaling.
Alexander Holmes, a PhD candidate at Monash University who led the study, said, “We used brain imaging and novel mathematical techniques to investigate the hierarchical organization of the brains of individuals with early psychosis and established schizophrenia. This organization is important for brain health, as it regulates how we can effectively respond to and process stimuli from the external world.”
The researchers used resting-state functional magnetic resonance imaging (fMRI) to measure gradients, an estimate of inter-regional functional coupling. Previous work had suggested that the primary sensory-fugal gradient was disrupted with schizophrenia, but the current study showed instead that secondary processing of the sensorimotor-visual gradient was affected in people with the disease.
Cameron Carter, MD, Editor of Biological Psychiatry: Cognitive Neuroscience and Neuroimaging, said of the work, “These new approaches to test mathematical models of the organization of circuits in the human brain are beginning to reveal the nature of the disruption of neural integration that underlies psychotic symptoms in people with schizophrenia. Targeting these changes offers a new approach to how we think about developing treatments for this often difficult to treat illness.”
Notes for editors
The article is "Disruptions of Hierarchical Cortical Organization in Early Psychosis and Schizophrenia," by Alexander Holmes, Priscila Levi, Yu-Chi Chen, Sidhant Chopra, Kevin Aquino, James Pang, and Alex Fornito (https://doi.org/10.1016/j.bpsc.2023.08.008(opens in new tab/window)). It appears as an Article in Press in Biological Psychiatry: Cognitive Neuroscience and Neuroimaging(opens in new tab/window), published by Elsevier(opens in new tab/window).The article is openly available at https://www.biologicalpsychiatrycnni.org/article/S2451-9022(23)00220-3/fulltext(opens in new tab/window).
Copies of this paper also are available to credentialed journalists upon request; please contact Rhiannon Bugno at BPCNNI@sobp.org(opens in new tab/window). Journalists wishing to interview the authors may contact Alexander Holmes at alexander.holmes1@monash.edu(opens in new tab/window).
The authors’ affiliations and disclosures of financial and conflicts of interests are available in the article.
Cameron S. Carter, MD, is Professor of Psychiatry and Psychology and Director of the Center for Neuroscience at the University of California, Davis. His disclosures of financial and conflicts of interests are available here(opens in new tab/window).
List of Referenes
- Alexander Holmes, Priscila T. Levi, Yu-Chi Chen, Sidhant Chopra, Kevin M. Aquino, James C. Pang, Alex Fornito. Disruptions of Hierarchical Cortical Organization in Early Psychosis and Schizophrenia. Biological Psychiatry: Cognitive Neuroscience and Neuroimaging, 2023; DOI: 10.1016/j.bpsc.2023.08.008
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