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Gabriele, C.

Publications and source records attributed to Gabriele, C..

2 recordsLinked to original sources

Non-neuronal, TGF-β- extracellular matrix restructuring promotes neurodegeneration in a PSP-Richardson syndrome model

Progressive supranuclear palsy-Richardson syndrome (PSP-RS) is a rapidly progressive tauopathy lacking effective therapies. Although tau aggregation is a defining feature, the initiating mechanisms remain elusive. Here we used patient-derived induced pluripotent stem cell midbrain organoids, integrating single-cell transcriptomics, bulk RNA profiling, and quantitative proteomics, to dissect early pathogenic events. We identified vascular leptomeningeal-like cells (VLMCs) as the first altered population, exhibiting TGF-{beta}-driven extracellular matrix (ECM) remodeling enriched in collagens, integrins, and TGFBI. The resulting pathological ECM increased stiffness, induced integrin clustering, and activated RhoA-ROCK-mediated cytoskeletal disorganization. These changes sustained PI3K-AKT and MAPK-ERK signaling, suppressed PP2A, hyperactivated mTOR, and impaired autophagy, culminating in tau hyperphosphorylation and mislocalization. Pharmacological inhibition of TGF-{beta}, AKT, ERK, or mTORC1 restored autophagic flux, reduced tau burden, and rescued neuronal architecture. Our findings establish non-neuronal, matrix-producing niche cells as upstream drivers of tauopathy and reveal TGF-{beta}-mediated ECM restructuring as a mechanochemical trigger of neurodegeneration, opening multiple therapeutic avenues for PSP-RS and related tauopathies.

neuroscience↗

Humpback whales harbor a highly novel and endemic gut microbiome that adapts to periods of fasting during migration

Humpback whales (Megaptera novaeangliae) are cosmopolitan in distribution and most populations migrate between foraging and breeding grounds each year1,2. As capital breeders, many humpbacks reduce foraging behavior and potentially fast for a few months of the year3. Here, we present a comparative genomic analysis of the gut microbiomes from humpbacks on two breeding grounds: Gulf of California, where feeding is common4-6, and Hawai i, where feeding is extremely rare7. The humpback whale gut microbiome shows unexpected taxonomic novelty, high endemism, and coevolutionary signal. These data also suggest an imbalance in the gut community with foraging reduction, supported by the enrichment of several aerobic metabolism genes, potentially indicative of inflammation, and pathogenesis gene sets used to colonize host tissues, modulate the immune system, and lyse tissues. Pathway reconstruction revealed gut communities shared symbiotic functions including the synthesis of essential amino acids, short chain fatty acids (SCFAs), and vitamins, as well as nitrogen salvaging mechanisms and degradation of biogeochemically relevant substrates like cellulose, chitin, and wax esters (including host chitinases). Complementary sequencing and taxonomic annotation revealed that more Clostridiaceae and Oscillospiraceae genera were in foraging whales, whereas fasting samples were enriched in Erysipelotrichaceae genera, associated with gut disease8,9. These data reveal striking changes in humpback whale gut microbiomes between their feeding and breeding grounds, raise the possibility that breeding whales are more susceptible to gut dysfunction or disease, and equally important reveal how humpback whales are likely making varying biogeochemical contributions to upper ocean communities over the course of the year.

genomics↗