Endoplasmic reticulum stress and oxidative stress drive endothelial dysfunction induced by high selenium.
Matshediso ZachariahHatem MaamounLarissa MilanoMargaret P RaymanLisiane B MeiraAbdelali AgouniPublished in: Journal of cellular physiology (2020)
Selenium is an essential trace element important for human health. A balanced intake is, however, crucial to maximize the health benefits of selenium. At physiological concentrations, selenium mediates antioxidant, anti-inflammatory, and pro-survival actions. However, supra-nutritional selenium intake was associated with increased diabetes risk leading potentially to endothelial dysfunction, the initiating step in atherosclerosis. High selenium causes apoptosis in cancer cells via endoplasmic reticulum (ER) stress, a mechanism also implicated in endothelial dysfunction. Nonetheless, whether ER stress drives selenium-induced endothelial dysfunction, remains unknown. Here, we investigated the effects of increasing concentrations of selenium on endothelial cells. High selenite reduced nitric oxide bioavailability and impaired angiogenesis. High selenite also induced ER stress, increased reactive oxygen species (ROS) production, and apoptosis. Pretreatment with the chemical chaperone, 4-phenylbutyrate, prevented the toxic effects of selenium. Our findings support a model where high selenite leads to endothelial dysfunction through activation of ER stress and increased ROS production. These results highlight the importance of tailoring selenium supplementation to achieve maximal health benefits and suggest that prophylactic use of selenium supplements as antioxidants may entail risk.
Keyphrases
- endoplasmic reticulum stress
- oxidative stress
- endothelial cells
- nitric oxide
- reactive oxygen species
- human health
- anti inflammatory
- healthcare
- diabetic rats
- cell death
- induced apoptosis
- risk assessment
- dna damage
- high glucose
- public health
- mental health
- climate change
- metabolic syndrome
- high resolution
- blood pressure
- cell proliferation
- hydrogen peroxide
- vascular endothelial growth factor
- heart rate
- signaling pathway
- social media
- heavy metals
- weight loss
- stress induced
- wound healing
- high speed
- atomic force microscopy
- heat stress
- free survival