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Todd, H. J.

Publications and source records attributed to Todd, H. J..

2 recordsLinked to original sources

Diabetes impacts endothelial Weibel-Palade body biogenesis and VWF secretion

Diabetes is associated with endothelial dysfunction, impaired wound healing, and increased thrombotic risk, yet the impact of diabetes on endothelial secretory organelles remains poorly understood. Weibel-Palade bodies (WPBs) are specialised endothelial granules that store and release von Willebrand factor (VWF) and other vasoactive cargo essential for haemostasis, inflammation, and vascular repair. Here, we investigated how diabetic environments influence WPB biogenesis and VWF structure under physiologically relevant flow conditions. Acute exposure of endothelial cells to constant or fluctuating high glucose concentrations, designed to model diabetic glycaemic conditions, did not alter WPB number or morphology under either static or high laminar shear stress conditions. In contrast, primary endothelial cells derived from a diabetic donor exhibited reduced Akt and eNOS signalling, significantly fewer WPBs, reduced intracellular VWF content, and shorter stimulus-evoked VWF strings compared with non-diabetic endothelial cells. Although total cellular VWF levels were reduced, high molecular weight (HMW) VWF content within endothelial lysates was not significantly altered. Plasma from diabetic patients demonstrated elevated circulating VWF levels together with marked inter-patient heterogeneity in VWF multimer composition. These findings suggest that chronic diabetes-associated endothelial dysfunction, rather than hyperglycaemia alone, alters WPB biology and VWF handling. We propose that dysregulated basal endothelial secretion may deplete endothelial VWF stores, limiting appropriate stimulus-coupled WPB release during vascular injury and contributing to defective vascular repair in diabetes.

cell biology↗

Low oscillatory shear stress regulates Weibel-Palade body size and vWF release.

Blood flow regulates vascular function by generating wall shear stress which impacts endothelial cell (EC) physiology. Whilst high laminar shear stress (HSS) maintains the functional integrity of the vasculature, low oscillatory shear stress (LOSS) evokes secretion of pro-thrombotic and pro-inflammatory components from ECs, thus promoting the development of cardiovascular disease (CVD). Pro-thrombotic and pro-inflammatory cargo are readily stored in endothelial-specific organelles termed Weibel-Palade bodies (WPBs). WPBs form purely due to the multimerization of the pro-thrombotic glycoprotein von Willebrand factor (vWF). Here we investigated if aberrant shear stress, induced by non-uniform oscillatory flow, modulates the biogenesis of WPBs, and the subsequent release of vWF. Ultimately, we demonstrate, using an in vitro model, that LOSS has no effect on the level of vWF expression, however, LOSS promotes endothelial thrombotic potential by increasing WPB size, which impacts the length of the vWF strings that are released upon stimulation. Thus, wall shear stress can confer functional plasticity to WPBs by manipulating their biogenesis. Further understanding of the underlying mechanisms could aid generation of novel therapeutics in CVD.

cell biology↗