Antipsychotic drug (AP)-naïve first-episode psychosis (FEP) patients display premorbid cognitive dysfunctions and dysglycemia. Brain insulin resistance may link metabolic and cognitive disorders in humans. This suggests that central insulin dysregulation represents a component of the pathophysiology of psychosis spectrum disorders (PSDs). Nonetheless, the links between central insulin dysregulation, dysglycemia, and cognitive deficits in PSDs are poorly understood. We investigated whether AP-naïve FEP patients share overlapping brain gene expression signatures with central insulin perturbation (CIP) in rodent models. We systematically compiled and meta-analyzed peripheral transcriptomic datasets of AP-naïve FEP patients along with hypothalamic and hippocampal datasets of CIP rodent models to identify common transcriptomic signatures. The common signatures were used for pathway analysis and to identify potential drug treatments with discordant (reverse) signatures. AP-naïve FEP and CIP (hypothalamus and hippocampus) shared 111 and 346 common signatures respectively, which were associated with pathways related to inflammation, endoplasmic reticulum stress, and neuroplasticity. Twenty-two potential drug treatments were identified, including antidiabetic agents. The pathobiology of PSDs may include central insulin dysregulation, which contribute to dysglycemia and cognitive dysfunction independently of AP treatment. The identified treatments may be tested in early psychosis patients to determine if dysglycemia and cognitive deficits can be mitigated.
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http://dx.doi.org/10.1016/j.psychres.2023.115636 | DOI Listing |
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December 2024
Wake Forest Alzheimer's Disease Research Center, Winston-Salem, NC, USA.
Background: Diet composition is associated with neurodegenerative disease risk including Alzheimer's Disease (AD). The adverse effects of Western-style diets may be moderated, in part, by systemic as well as central inflammation, whereas the neuroprotective effects of Mediterranean diets may work through mechanisms that promote anti-inflammatory phenotypes. Systemic inflammation also may induce insulin resistance, another risk factor for AD.
View Article and Find Full Text PDFBackground: Alzheimer's disease and type 2 diabetes mellitus rank among the top ten leading global causes of death. The association between diabetes and Alzheimer's is linked to chronic low-grade inflammation, hyperinsulinemia, and the interplay between peripheral and central insulin resistance, influencing insulin signalling. We evaluated the association between diabetes and Alzheimer's-related neuropathology in cognitively unimpaired older adults with diabetes.
View Article and Find Full Text PDFAlzheimers Dement
December 2024
Wake Forest University School of Medicine, Winston Salem, NC, USA.
Background: Central nervous system (CNS) dysregulated insulin and peripheral hyperinsulinemia has been associated with AD. However, analyzing CNS insulin resistance in living subjects and its implication on cognitive impairment/ AD is difficult to establish due to inaccessibility of brain tissue. In this study we isolated and characterized plasma neuron-derived small extracellular vesicles (NDE), and adopted multi-omics approaches to discover novel biomarkers of AD and CNS insulin resistance and suggested their possible association.
View Article and Find Full Text PDFAlzheimers Dement
December 2024
Division of clinical Geriatrics, Department of Neurobiology, Care Sciences and Society, Karolinska Institutet and Stockholm University, Stockholm, Sweden.
Background: The Cardiovascular risk factors, aging, and dementia (CAIDE) risk score is a validated tool estimating dementia risk. We investigated the association of CAIDE score with 12 markers of glucose and lipid metabolism, in the Finnish Geriatric Intervention Study to Prevent Cognitive Impairment and Disability (FINGER) participants.
Methods: The FINGER trial had 1260 participants, aged 60-77 years, with a CAIDE score ≥6, without substantial cognitive impairment.
Alzheimers Dement
December 2024
University of Kentucky College of Medicine, Lexington, KY, USA.
Background: We have recently published that overexpressing a constitutively active form of the insulin receptor beta subunit (IR-β) in hippocampal neurons ameliorates spatial memory performance in the F344 rat model of aging (Frazier et al., 2020). Because astrocytes express IRs and are central to cellular energy and information transfer in the brain, here we focus on the knockdown of IR in astrocytes of the primary somatosensory cortex (S1) in the 5xFAD animal model.
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