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Gonzalez de la Fuente, S.

Publications and source records attributed to Gonzalez de la Fuente, S..

2 recordsLinked to original sources

Embryonic cortical extracellular vesicles confer neuroprotection via multipathway signaling with CaMKIIα as a key mediator

Extracellular vesicles (EVs) are increasingly recognized for their roles in orchestrating embryonic development. Emerging preclinical evidence further suggests that EVs from young organisms possess innate regenerative potential for adult or injured tissues. Here we show that small extracellular vesicles (sEVs) isolated from the mouse embryonic cortex exert neuroprotective effects in vitro and in vivo. Proteomic profiling revealed that embryonic sEVs are enriched with effectors of receptor tyrosine kinase activation, anti-inflammatory responses, and protein synthesis. Notably, we identified BDNF as a surface-bound cargo on embryonic sEVs, displaying superior stability and receptor activation kinetics than its non-vesicular form. Phospho-proteomic analysis further revealed that sEVmediated neuroprotection is driven primarily by the CaMKII signaling axis, which targets downstream effectors of microtubule stability, synaptic plasticity, and membrane-cytoskeleton interactions. Critically, embryonic sEVs, but not those from aged mice, restored microtubule stability and mitochondrial respiration in aged neurons in vitro. Our findings identify embryonic cortical sEVs as significant regulators of neuronal resilience and provide a molecular blueprint for EV-based strategies in neurodegeneration and aging research.

molecular biology↗

LOSS OF CLDN5 -AND INCREASE IN IRF7- IN THE HIPPOCAMPUS AND CEREBRAL CORTEX OF DIABETIC MICE AT THE EARLY SYMPTOMATIC STAGE.

Analyzing changes in gene expression within specific brain regions of individuals with Type 2 Diabetes (T2DM) who do not exhibit significant cognitive deficits can yield valuable insights into the mechanisms that may underlie the progression toward a more severe phenotype, for example as when individuals age. Here, we present evidence that adult mice with long-term type 2 diabetes mellitus (T2DM) and minor cognitive deficits display alterations in the expression of 27 genes in the cerebral cortex and 16 genes in the hippocampus compared to non-T2DM mice. Only six of these genes undergo the same type of change both in the cortex and hippocampus: Interferon regulatory factor 7 (Irf7), Hypoxia-inducible factor 3 alpha (Hif-3), period circadian clock 2 (Per2), xanthine dehydrogenase (Xdh), and Transforming growth factor {beta}-stimulated clone 22/TSC22 (Tscd3) are all upregulated, while Claudin-5 (Cldn5) is downregulated. At the protein level, Claudin5 and IRF7 showed equivalente changes: downregulation of CLDN5 and upregulation of IRF7. These results suggest that cognitive deficits linked to chronic T2DM may stem from compromised blood-brain barrier integrity and an abnormal inflammatory response in the early stages of the disease. This underscores the potential for therapeutic interventions targeting CLDN5 and IRF7.

neuroscience↗