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Tropisetron attenuates high-glucose-induced vascular endothelial dysfunction via inhibition of calcineurin/NFAT
Anita Barzegar-Fallah1, Pejman Ghaffari-Bohlouli2, Shabnam Nadjafi3
1Department of Pharmacology, School of Medicine, Iran University of Medical Sciences, Tehran, Iran; BioMatter Unit-Biomass Transformation Lab (BTL), École Interfacultaire de Bioingénieurs (EIB), Université Libre de Bruxelles, Brussels, Belgium.
Abstract:
Vascular endothelial dysfunction (VED) is considered an important initiating factor in pathogenesis of diabetic vascular disease. In this process, oxidative insult, cellular hypertrophy, and activation of the calcineurin/nuclear factor of activated T-cell (NFAT) pathway play key roles. Herein, we investigated the effects of tropisetron (TRS), a calcineurin inhibitor, on high glucose (HG)-induced hypertrophy and apoptosis in human umbilical vein endothelial cells (HUVECs). To this end, HUVECs and chorioallantoic membranes (CAMs) were exposed to HG with or without TRS or cyclosporine A (CsA), and the effects of the treatments were evaluated on oxidative stress generation, cell number (proliferation and apoptosis), cell size (hypertrophy), and vessel formation. We also explored the possible role of calcineurin-NFAT signalling in the potential protective effects of TRS on hypertrophy and apoptosis associated with HG. The average size and protein content of the cells exposed to HG for 48h were significantly increased compared with normal glucose (NG). HG significantly increased apoptosis, altered the cell cycle, and elevated oxidative and nitrosative stress in HUVECs. Further, exposing cells to HG resulted in elevated calcineurin activity and NFATc1 translocation to the nuclei. HG also caused a significant decrease in the formation of new blood vessels in CAMs. Inhibition of calcineurin/NFAT pathway by TRS or CsA protected against these pathological changes. Our data demonstrated that inhibition of calcineurin/NFAT signalling by TRS, as a safe calcineurin inhibitor, may ameliorate HG-induced VED. Further in vivo and clinical studies are required to fully determine the protective effects of TRS against VED in diabetes.
Insights
Tropisetron (TRS), a calcineurin inhibitor, protects against high glucose-induced vascular endothelial dysfunction by reducing cell hypertrophy and apoptosis. This suggests TRS may be a potential therapeutic for diabetic vascular complications.
Area of Science:
- Cardiovascular Biology
- Endothelial Cell Biology
- Diabetic Complications
Background:
- Vascular endothelial dysfunction (VED) is a key factor in diabetic vascular disease pathogenesis.
- Oxidative stress, cellular hypertrophy, and calcineurin/NFAT pathway activation are critical in VED.
- High glucose (HG) exposure contributes to endothelial cell damage.
Purpose of the Study:
- To investigate the effects of tropisetron (TRS), a calcineurin inhibitor, on high glucose (HG)-induced hypertrophy and apoptosis in human umbilical vein endothelial cells (HUVECs).
- To explore the role of the calcineurin-NFAT signaling pathway in the protective effects of TRS against HG-induced VED.
Main Methods:
- HUVECs and chorioallantoic membranes (CAMs) were exposed to HG with or without TRS or cyclosporine A (CsA).
- Evaluated oxidative stress, cell number (proliferation/apoptosis), cell size (hypertrophy), and vessel formation.
- Assessed calcineurin activity and NFATc1 translocation.
Main Results:
- HG significantly increased HUVEC size, protein content, apoptosis, and oxidative/nitrosative stress.
- HG elevated calcineurin activity and NFATc1 nuclear translocation.
- HG reduced new blood vessel formation in CAMs, which was prevented by TRS or CsA.
Conclusions:
- Inhibition of the calcineurin/NFAT pathway by TRS ameliorates HG-induced VED.
- TRS demonstrates potential as a safe therapeutic agent for diabetic vascular complications.
- Further in vivo and clinical studies are warranted to confirm TRS's protective effects.
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