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Thevenet, J.

Publications and source records attributed to Thevenet, J..

2 recordsLinked to original sources

Human Saphenous Vein Ex Vivo Culture as a Translational Model of Intimal Hyperplasia

BACKGROUNDIntimal hyperplasia (IH) significantly limits the long-term patency of saphenous vein grafts following bypass surgery, with no human models available to fully understand its complex pathogenesis. Although animal models, primarily murine systems, have provided mechanistic insights into IH, limitations persist in translating these findings to human pathophysiology. Here, we evaluate the translational value of a static ex vivo culture model using human saphenous vein segments to study IH. METHODSHuman saphenous vein segments obtained from patients who underwent lower limb bypass surgery were cultured ex vivo for 7 days under static conditions. Histological and immunohistochemical analyses were conducted to evaluate endothelial dysfunction, vascular smooth muscle cell (VSMC) phenotype switching, extracellular matrix (ECM) remodeling, inflammation, and apoptosis. Spatial transcriptomics (GeoMx) were employed to characterize the localized transcriptional alterations, which were subsequently validated using targeted qPCR, western blotting, and additional immunostaining techniques. RESULTSCultured vein segments developed characteristic features of IH, including marked endothelial dysfunction, increased apoptosis and proliferation, ECM remodeling and neointima formation. Spatial transcriptomics revealed localized VSMC dedifferentiation and activation of inflammatory, oxidative stress, and ECM remodeling pathways. Importantly, we also observed evidence of osteochondrogenic differentiation of human VSMCs during IH, with significant upregulation of osteogenic markers such as RunX2. CONCLUSIONSOur ex vivo human saphenous vein model captures the complex molecular and cellular dynamics of IH, offering insights into endothelial dysfunction, VSMC plasticity, and osteochondrogenic transitions. This translational model holds significant promise for evaluating novel therapeutic strategies targeting graft IH.

physiology↗

NNMT promotes tubular senescence and fibrosis in chronic kidney disease

Chronic kidney disease (CKD) is a major global health issue, projected to become the fifth leading cause of mortality by 2040. Renal tubular cell senescence is a key driver of kidney fibrosis, the final manifestation of CKD. However, current treatment strategies, do not target senescent cells, as the underlying mechanisms driving this dysfunctional phenotype remain poorly described. Here, we identify nicotinamide-N-methyltransferase (NNMT), as a critical mediator of tubular senescence and fibrosis in CKD. Using human RNAseq profiles of CKD, we show that NNMT expression in the renal tubulointerstitium is strongly associated with CKD pathology and transcriptional signatures of cellular senescence. In human diabetic kidney disease biopsies, NNMT levels correlate with the senescence marker p21, kidney function decline, and fibrosis. Spatial transcriptomics further highlights that NNMT-positive tubules are senescent, fibrotic, and surrounded by a pro-inflammatory microenvironment. Preclinical models of early-stage CKD, show upregulation of NNMT and association with senescence. Overexpression of NNMT in TGF-{beta}-stimulated tubular epithelial cells promotes senescence and partial epithelial-to-mesenchymal transition (EMT), while inhibition of NNMT in kidney cells and organoids is protective. Altogether, we identify NNMT as a novel therapeutic target in the early stages of CKD with the potential to reduce tubular senescence, fibrosis and significantly slow disease progression.

cell biology↗