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Combination of hyperglycaemia and hyperlipidaemia induces endothelial dysfunction: Role of the endothelin and nitric oxide systems
- Source :
- Journal of Cellular and Molecular Medicine
- Publication Year :
- 2020
- Publisher :
- Wiley, 2020.
-
Abstract
- Endothelial dysfunction (ED) is a key feature of diabetes and is a major cause of diabetic vasculopathy. Diabetic patients who also exhibit hyperlipidaemia suffer from accelerated vascular complications. While the deleterious effects of high glucose levels (HG) and hyperlipidaemia alone on ED are well established, the effects of combined hyperlipidaemia and HG have not been thoroughly studied. Therefore, the current study examines whether HG and hyperlipidaemia exert synergistic ED, and explores the mechanisms underlying this phenomenon. We applied multi‐disciplinary approaches including cultured HUVECs and HMEC‐1 as well as knockout mice CByJ.129S7(B6)‐Ldlrtm1Her/J (LDLR−/−) to investigate the mechanisms underlying combined HG and hyperlipidaemia‐induced ED. Incremental doses of glucose in the presence or absence of OxLDL were added to HUVECs and HMEC‐1. After 5 days, the status of nitric oxide (NO) and endothelin (ET)‐1 systems as well as their signal transduction were assessed using Western blot, ELISA and immunoreactive staining. The effects of chronic combination of HG and hyperlipidaemia on endothelial integrity and function as well as alterations in circulatory NO and ET‐1 systems were examined in knockout mice LDLR−/− and their wild‐type. HUVEC cells exposed to HG and OxLDL displayed enhanced ET‐1 production, more than HG or OxLDL when added alone. Overproduction of ET‐1 stems from up‐regulation of endothelin converting enzyme (ECE)‐1 as observed under these conditions. In contrast, combination of HG and OxLDL dramatically decreased both total endothelial NO synthase (eNOS) by 60%, and activated eNOS (peNOS) by 80%. Moreover, NRF2 decreased by 42% and its active form (pNRF2) by 56%, as compared to baseline. Likewise, ETB levels decreased by 64% from baseline on endothelial cells. Furthermore, diabetic LDLR−/− mice displayed a higher blood pressure, plasma triglycerides, cholesterol, ET‐1 and NO2/NO3 levels, when compared with normoglycemic LDLR−/− and BALB mice. Combined hyperglycaemia and hyperlipidaemia activates the ET system and attenuates the nitric oxide system with the Nrf2 signalling pathway. These findings suggest that perturbations in these paracrine systems may contribute to ED.
- Subjects :
- 0301 basic medicine
medicine.medical_specialty
NF-E2-Related Factor 2
Hyperlipidemias
Nitric Oxide
Nitric oxide
Mice
03 medical and health sciences
chemistry.chemical_compound
0302 clinical medicine
Cell Movement
Enos
Internal medicine
Diabetes mellitus
Human Umbilical Vein Endothelial Cells
medicine
Animals
Humans
Endothelium
Endothelial dysfunction
Cells, Cultured
Mice, Knockout
biology
Cholesterol
Endothelins
Original Articles
Cell Biology
medicine.disease
biology.organism_classification
endothelial cells
Lipoproteins, LDL
Disease Models, Animal
030104 developmental biology
Endocrinology
chemistry
Hyperglycemia
030220 oncology & carcinogenesis
Circulatory system
Knockout mouse
Molecular Medicine
Original Article
lipids (amino acids, peptides, and proteins)
Disease Susceptibility
oxidized‐LDL endothelin
Endothelin receptor
hyperglycaemia
Biomarkers
Subjects
Details
- ISSN :
- 15824934 and 15821838
- Volume :
- 25
- Database :
- OpenAIRE
- Journal :
- Journal of Cellular and Molecular Medicine
- Accession number :
- edsair.doi.dedup.....ce90ebf89029f245da893c9ee1c378ab