ArticleTranslational psychiatry2025
Extracellular vesicle profiling reveals novel autism signatures in patient-derived forebrain organoids.
Article in Translational psychiatry, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- Brain organoids as models of extracellular vesicle-mediated human neural communication.Neural regeneration research · 2026Article
- Astrocyte-Derived Extracellular Vesicles and the Evolution of Neural Complexity: Perspectives on Vesicle-Mediated Neuron-Glia Communication.Molecular neurobiology · 2026Review
- Maternal Extracellular Vesicles During Pregnancy and Autism Risk in Children.medRxiv : the preprint server for health sciences · 2026Article
- Next-Generation Strategies for Neural Repair and Regeneration: Neural Organoid Transplantation in the CNS.Cell proliferation · 2026Review
- The Role that Biobanks Can Play in Driving Animal-Free Biomedical Research.Expert reviews in molecular medicine · 2026Review
- The synergistic applications of organoids and exosomes in disease modeling and disease treatment.Molecular biology reports · 2026Review
- Extracellular Vesicles in Angelman Syndrome: Expanding UBE3A Role beyond a Cell Autonomous Mechanism.Journal of experimental neurology · 2026Article
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Abstract
Autism Spectrum Disorder (ASD) affects 1 percent of the world's population with an increased prevalence of 178 percent since 2000. Although altered synaptic function putatively accounts for many of the abnormalities seen in ASD, the specific molecular mechanisms underlying this disorder remain poorly defined. A growing body of evidence suggests that extracellular vesicles (EVs), specifically exosomes, play a critical role in cellular communication within the brain. While they have been implicated in various types of diseases from cancer to neurodegeneration, their involvement in ASD remains largely unexplored. In this study, we utilized patient-derived cortical organoid models to characterize EVs secreted by human three-dimensional (3D) tissue and defined their cargo. Our study reports, for the first time, alterations in ASD organoid-derived EVs in comparison to healthy control cortical EVs. By utilizing small RNA sequencing, proteomics, nanoparticle tracking and microscopy, we provide a comprehensive characterization of the cargo carried by EVs secreted from human 3D forebrain models. Our findings reveal substantial differences both in the RNA and protein content of ASD-derived EVs, providing insight into disease mechanisms as well as highlighting the potential of exosome-based diagnostics and therapies for ASD.
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