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Biology subjects

Croci, D. O.

Publications and source records attributed to Croci, D. O..

2 recordsLinked to original sources

Purified CBD and CBD-rich full-spectrum Cannabis sativa extract potentiate the angiogenic paracrine function of umbilical cord derived mesenchymal stem cells

BackgroundChronic and non-healing wounds remain a major clinical challenge with limited therapeutic options. Angiogenesis and inflammation are central to tissue repair, and mesenchymal stem cells (MSC) contribute to these processes through their trophic and immunomodulatory secretome. Cannabidiol (CBD) exhibits antioxidant and immunomodulatory properties. However, whether CBD-rich Cannabis sativa extract stimulate MSC toward a pro-angiogenic secretome remains unclear. PurposeThis study aims to determine whether purified CBD or a phytochemically CBD-rich full spectrum extract stimulate umbilical cord-derived human MSC (UC-hMSC) to secrete pro-angiogenic factors and enhance endothelial responses relevant to wound healing. MethodsUC-hMSC were preconditioned with either purified CBD or a CBD-rich full-spectrum extract. Transcriptional changes were assessed by qPCR. The functional impact of the resulting secretomes was evaluated in vitro using HUVEC-based proliferation and tube formation assays, and in vivo through the chick chorioallantoic membrane assay. To explore underlying mechanisms, we examined HIF-1 stabilization and VEGFA release in UC-hMSC, and VEGFR-2/ERK signaling in HUVEC. ResultsPurified CBD and full-spectrum CBD extract preconditioned UC-hMSC secretomes, increased HUVEC proliferation, tube formation, and enhanced vascular branching in the CAM assay. Mechanistic analyses indicated activation of the HIF-1/VEGF axis in UC-hMSC, and ERK1/2 activation in HUVEC that was sensitive to VEGFR-2 blockade. ConclusionPurified CBD and CBD-rich full-spectrum extract prime UC-hMSC toward a pro-angiogenic secretome that promotes endothelial activation and neovascularization. These findings suggest that cannabinoid-based preconditioning of UC-hMSC involves the HIF-1/VEGF axis and VEGFR-2/ERK signaling pathways in endothelial cells, supporting further investigation of this approach in wound healing and regenerative therapies.

cell biology↗

An Altered Glycome Shapes IgA B-Cell Responses and Gut Immunity During Intestinal Inflammation

A healthy gut immune system balances pathogen defense and tolerance to beneficial microbes. This equilibrium is sustained by coordinated mechanisms where B cells (BCs) play a central role, and secretory immunoglobulin A (SIgA) regulates microbiome composition. In ulcerative colitis (UC), impaired tolerogenic pathways result in exaggerated immune activation, epithelial dysfunction, and tissue damage; however, the contribution of BCs to disease pathogenesis remains unclear. Notably, sialylation is crucial to B-cell function, but its relevance in the intestinal IgA B-cell response has been scarcely explored. Here, we show that SIgA from active UC patients displays an inflammation-dependent reduction in (2,6)-sialylation. This desiaylation is recapitulated in dextran sodium sulfate-induced colitis, where IgA plasma cells (IgA+ PCs) and BCs exhibit a similar glycophenotype. Functional analyses reveal that BCs lacking (2,6)-sialylation on N-glycans exhibit defective differentiation into IgA PCs and diminished capacity to suppress intestinal inflammation in vivo, with increased neutrophil infiltration. Moreover, transcriptomic analyses of UC patient samples suggest a synergistic contribution of neuraminidase activity and reduced bioavailability of sialic acid precursors, leading to SIgA desialylation. Collectively, these findings uncover a glycosylation-dependent pathological circuit in which altered sialylation of SIgA and BCs disrupts their function, compromising mucosal homeostasis in intestinal inflammation.

immunology↗