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Espourteille, J.

Publications and source records attributed to Espourteille, J..

5 recordsLinked to original sources

Reduced levels of synaptic vesicle protein 2A in the extracellular vesicles and brain of Alzheimer's disease- associations with Aβ, tau and synaptophysin

BackgroundSynaptic dysfunction plays an important role in Alzheimers disease (AD) and is an emerging imaging and fluid biomarker. Here, we aimed to assess the regional expression of synaptic vesicle glycoprotein 2A (SV2A) in the brain and extracellular vesicles of AD patients and its associations with the APOE {varepsilon}4 allele, amyloid-{beta}, tau pathologies, and other synaptic markers. MethodsMass spectrometry-based synaptosome proteomics was performed on brain-derived extracellular vesicles (BdEVs) isolated from the frontal cortex of 17 AD patients and 4 NCs. Immunohistochemical staining for SV2A, synaptophysin, amyloid-{beta} and phospho-tau was performed on postmortem tissue from the frontal, temporal, and entorhinal cortices and hippocampus of 40 AD patients and 44 nondemented controls (NCs). ResultsReduced levels of synaptic proteins, including synaptotagamin, GAP43, SYT1, SNAP25 and 14-3-3{zeta}, were positively correlated with SV2A and negatively correlated with GFAP and NEFL in BdEVs from AD patients and NCs. We detected lower levels of SV2A in the hippocampus and entorhinal cortex of AD compard to NCs, and in APOE {varepsilon}4 carriers than in noncarriers. SV2A levels were positively correlated with synaptophysin and negatively correlated with the levels of the amyloid-{beta}, phospho-tau, and Braak stages. ConclusionsThis study provides postmortem evidence of synaptic markers and reduced regional levels of SV2A in brain tissue slices and BdEVs from AD patients compared with NCs and in APOE {varepsilon}4 carriers compared to non-carriers. SV2A could serve as a valuable marker for monitoring synaptic degeneration in AD.

neuroscience↗

Astrocyte and mitochondrial footprints in brain-derived extracellular vesicles predict tau pathology

Tauopathies are neurodegenerative disorders characterized by abnormal tau aggregation, with primary 3R (e.g., Picks disease, PiD) and 4R (e.g., progressive supranuclear palsy, PSP) variants posing a significant diagnostic challenge. Here, we examined brain-derived extracellular vesicles (BD-EVs) isolated from the prefrontal cortex of PiD (3R), PSP (4R), and non-demented controls (CTRL) to determine if these vesicles reflect disease-specific proteomic signatures. We found that while tau pathology does not substantially alter BD-EV concentration or the enrichment of core vesicular markers, it does influence their size distribution and protein cargo. BD-EV samples from PiD patients exhibited a greater abundance of small vesicles and distinct protein profiles when compared to PSP and CTRL. Weighted Gene Co-expression Network Analysis (WGCNA) identified four key protein modules to account for variance between patient groups Endoplasmic Reticulum, Mitochondria, Microtubules, and Trivalent Inorganic Cation Transport. In PiD, astrocyte-derived mitochondrial proteins were significantly elevated, whereas neuronal microtubule-related proteins were diminished relative to both PSP and CTRL. Notably, changes in the mitochondrion and microtubule modules enhanced the detection of PiD pathology. Cellular origin annotation revealed a marked shift in BD-EV composition: PiD samples exhibited an increased astrocytic signature, while both PiD and PSP showed a reduction in neuronal proteins compared to CTRL. Crucially, the enrichment of astrocytic mitochondrial and endoplasmic reticulum proteins, alongside reduced neuronal proteins, correlated strongly with the severity of tau pathology (AT8-stained aggregates) in patient brains. These findings demonstrate that BD-EVs capture tau isoform-specific cellular and molecular alterations, offering a window into disease mechanisms at the neuron-glia interface. By linking distinct protein signatures and their cellular origins to tau pathology severity, our results highlight the potential of BD-EV profiling as a biomarker strategy for distinguishing between and monitoring the progression of 3R and 4R tauopathies.

neuroscience↗

Astrocyte-derived PEA116 increases adult hippocampal neurogenesis and confers stress resilience

In the dentate gyrus of the hippocampus, the neurogenic niche regulates several steps of adult neurogenesis, from the proliferation to the integration of newly formed neurons in the hippocampal network. However, the role of astrocytes in the regulation of adult neural stem cell (aNSC) proliferation is still little described. Here, we found that blocking vesicular release from astrocytes decreased cell proliferation in the dentate gyrus, resulting in impaired adult neurogenesis. Inversely, astrocyte-conditioned medium increased cell proliferation in a vesicular release-dependent manner. We identified PEA116 as a peptide released by astrocytes, that is derived from the c-terminal portion of the PEA15 protein and increased cell proliferation. PEA116 increased ERK2 phosphorylation, decreased the expression of genes involved in aNSC quiescence, resulting in aNSC quiescence exit. The ensuing increase in hippocampal neurogenesis improved resilience to chronic stress. These findings highlight a novel peptide produced by astrocytes that regulates the early steps of adult neurogenesis, with an implication for mood disorders.

neuroscience↗

Inverse and Postponed Impacts of Extracellular Tau PHF on Astrocytes and Neurons' Mitochondrial Function

BackgroundTauopathies encompass a spectrum of neurodegenerative disorders which are marked by the pathological aggregation of tau protein into paired helical filaments (PHF-tau), neurofibrillary tangles (NFTs) and Glial-fibrillary tangles (GFTs). These aggregates impair cellular, mitochondrial, and synaptic functions. The emergence of extracellular tau (ePHF-tau), featuring a myriad of isoforms and phosphorylation states, presents a challenge in comprehending its nuanced effects on neural cells, particularly concerning synaptic and mitochondrial integrity. MethodsWe studied the impact of ePHF-tau (2N4R) on different states and ages of primary cultures of rat neuroglia. Using confocal microscopy and proteomic analysis of synaptosomes, we studied the impact of ePHF-tau on neurite and synapse number. We monitored mitochondrial responses in neurons and astrocytes over 72 hours using advanced fluorescence microscopy for dynamic, high-throughput analysis. ResultsTreatment with ePHF-tau has a strong effect on the neurites of immature neurons, but its toxicity is negligible when the neurons are more mature. At the mature stage of their development, we observed a substantial increase in the density of the PSD-95/vGlut1 zone in neurite, suggesting altered synaptic connectivity and ePHF-tau excitotoxicity. Proteomics revealed significant changes in mitochondrial protein in synaptosomes following exposure to ePHF-tau. In the neuronal compartment, real-time imaging revealed rapid and persistent mitochondrial dysfunction, increased ATP production, and reduced mitochondrial turnover. In contrast, we observed increased mitochondrial turnover and filamentation after treatment in the astrocyte processes, indicating cell-specific adaptive responses to ePHF-tau. ConclusionsThis study sheds light on the intricate effects of extracellular tau aggregates on neuronal and astrocytic mitochondrial populations, highlighting how tau pathology can lead to mitochondrial disturbances and synaptic alterations. By delineating the differential responses of neurons and astrocytes to ePHF-tau, our findings pave the way for developing targeted therapeutic interventions to mitigate the detrimental impacts of tau aggregates in neurodegenerative diseases.

neuroscience↗

Accumulation of Tau in Extracellular Vesicles Disturbs the Astrocytic Mitochondrial System

Tauopathies are neurodegenerative disorders involving the accumulation of tau isoforms in cell subpopulations such as astrocytes. The origins of the 3R and 4R isoforms of tau that accumulate in astrocytes remain unclear. Extracellular vesicles (EVs) were isolated from primary neurons overexpressing 1N3R or 1N4R tau or from human brain extracts (progressive supranuclear palsy or Pick disease patients or controls) and characterized (electron microscopy, nanoparticle tracking analysis (NTA), proteomics). After the isolated EVs were added to primary astrocytes or human iPSC-derived astrocytes, tau transfer and mitochondrial system function were evaluated (ELISA, immunofluorescence, MitoTracker staining). We demonstrated that neurons in which 3R or 4R tau accumulated had the capacity to transfer tau to astrocytes and that EVs were essential for the propagation of both isoforms of tau. Treatment with tau-containing EVs disrupted the astrocytic mitochondrial system, altering mitochondrial morphology, dynamics and redox state. Although similar levels of 3R and 4R tau were transferred, 3R tau-containing EVs were significantly more damaging to astrocytes than 4R tau-containing EVs. Moreover, EVs isolated from the brain fluid of patients with different tauopathies affected mitochondrial function in astrocytes derived from human iPSCs. Our data highlight that tau pathology spreads to surrounding astrocytes via EVs-mediated transfer and modify their function.

neuroscience↗