Grape seed meal by-product is able to counteract oxidative stress induced by lipopolysaccharide and dextran sulphate in IPEC cells and piglets after weaning.
Gina Cecilia PistolDaniela Eliza MarinValeria Cristina BulgaruAndrei Cristian AnghelMihaela SărăcilăMihaela VlassaMiuta FilipIonelia TaranuPublished in: PloS one (2023)
Oxidative stress is a pivotal factor in the pathogenesis of intestinal inflammation, leading to cellular damage and tissue injury. Natural antioxidants compounds found in agro-industrial by-products have proven their effectiveness in treatment of intestinal inflammation and oxidative stress, exhibiting many favourable effects. The aim of this study was to evaluate the capacity of a grape seed meal byproduct (GSM) to counteract the effects induced by E. coli lipopolysaccharide (LPS, 5μg/ml) in vitro on IPEC-1 cells and by dextran sulphate sodium (DSS, 1g/b.w./day) in vivo on piglets after weaning. Reactive oxygen species (ROS), pro-oxidant markers (malondialdehyde MDA, thiobarbituric acid reactive substances TBARS, protein carbonyl, DNA oxidative damage) antioxidant enzymes (catalase -CAT, superoxide dismutase -SOD, glutathione peroxidase -GPx, endothelial and inducible nitric oxide synthases -eNOS and iNOS) and several important components of Keap1/Nrf2 signalling pathway were analysed in IPEC-1 cells as well as in piglet's colon and lymph nodes. Our results demonstrated that GSM extract or 8% dietary GSM showed anti-oxidant properties counteracting the pro-oxidant response (ROS, MDA-TBARS, protein carbonyl, DNA/RNA damage) induced by LPS or DSS and restoring the levels of endogenous antioxidant enzymes, including CAT, SOD, GPx, eNOS and iNOS in colon and mesenteric lymph nodes. These beneficial effects were modulated via Nrf2 signalling pathway in both in vitro and in vivo studies.
Keyphrases
- oxidative stress
- induced apoptosis
- anti inflammatory
- dna damage
- cell cycle arrest
- lymph node
- diabetic rats
- reactive oxygen species
- nitric oxide
- inflammatory response
- nitric oxide synthase
- ischemia reperfusion injury
- cell death
- pi k akt
- hydrogen peroxide
- endoplasmic reticulum stress
- systematic review
- randomized controlled trial
- single molecule
- mechanical ventilation
- cell free
- heavy metals
- small molecule
- nucleic acid
- escherichia coli
- heat shock
- wastewater treatment
- cell proliferation
- lps induced
- early stage
- rectal cancer
- amino acid
- heat stress