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Viola, T. W.

Publications and source records attributed to Viola, T. W..

2 recordsLinked to original sources

Extracellular vesicles from morphine-exposed prefrontal cortex carry transcriptomic and proteomic signatures of synaptic dysfunction

Extracellular vesicles (EVs) released by neurons and glial cells mediate intercellular communication in the brain and regulate synaptic function, neuronal survival, and neuropathological processes. Although chronic opioid exposure induces widespread neuroadaptations, the contribution of brain-derived EVs (BDEVs) to these processes remains largely unknown. Here, we isolated BDEVs from the prefrontal cortex of rats chronically exposed to morphine and performed integrative transcriptomic and proteomic analyses of their molecular cargo. Total RNA sequencing combined with unbiased proteomics revealed that morphine profoundly reprograms the BDEV transcriptome and proteome, enriching pathways related to synaptic plasticity, endoplasmic reticulum (ER) stress, mitochondrial dysfunction, and neurodegeneration. Among the most prominent alterations, the synaptic regulator ARC was consistently modulated at the mRNA level, while the ER stress marker HSPA5 was altered at both mRNA and protein levels. Functional assays further demonstrated that BDEVs derived from morphine-treated rats were sufficient to reconfigure transcriptional programs in naive cortical neurons, affecting genes associated with synaptic remodeling and excitability. Collectively, these findings provide the first evidence that chronic opioid exposure reprograms BDEV cargo in a brain region critical for addiction and that these vesicles can propagate transcriptional reorganization to recipient neurons. BDEVs thus emerge as active mediators of morphine-induced neuroadaptations and as potential targets for biomarker discovery and therapeutic intervention in opioid use disorder.

neuroscience↗

Systematic review and meta-analysis of bulk RNAseq studies in human Alzheimer's disease brain tissue

ObjectiveTo systematically review and meta-analyze bulk RNA sequencing studies comparing Alzheimers disease (AD) patients with controls in human brain tissue, assessing study quality and identifying key genes and pathways. MethodsWe searched PubMed, Web of Science, and Scopus on September 23, 2023, for studies using bulk RNAseq on primary human brain tissue from AD patients and controls. Excluded were non-primary tissue, re-analyses without new data, limited RNA types and gene panels. Quality was assessed with a 10-category tool. Meta-analysis used high-quality datasets. ResultsFrom 3,266 records, 24 studies met criteria. Meta-analysis found 571 differentially expressed genes (DEGs) in temporal lobe and 189 in frontal lobe; overlapping pathways included "Tube morphogenesis" and "Neuroactive ligand-receptor interaction." LimitationsStudy heterogeneity and limited data tables constrained the review. ConclusionsRigorous methods are vital in AD transcriptomic studies. Findings enhance understanding of transcriptomic changes, aiding biomarker and therapeutic development. RegistrationPROSPERO (CRD42023466522).

neuroscience↗