Correlation of Metabolic Syndrome with Redox Homeostasis Biomarkers: Evidence from High-Fat Diet Model in Wistar Rats.
Danila Di MajoPierangelo SardoGiuseppe GigliaValentina Di LibertoFrancesco Paolo ZummoMaria Grazia ZizzoGaetano Felice CaldaraFrancesca RappaGiorgia IntiliRoelof Maarten van DijkDaniele GalloGiuseppe FerraroGiuditta GambinoPublished in: Antioxidants (Basel, Switzerland) (2022)
Metabolic Syndrome (MetS) is an extremely complex disease. A non-balanced diet such as high-fat diet (HFD) induces metabolic dysfunction that could modify redox homeostasis. We here aimed at exploring redox homeostasis in male Wistar rats, following 8 weeks of HFD, correlating the eventual modification of selected biomarkers that could be associated with the clinical manifestations of MetS. Therefore, we selected parameters relative to both the glucose tolerance and lipid altered metabolism, but also oxidative pattern. We assessed some biomarkers of oxidative stress i.e., thiols balance, lipid peroxidation and antioxidant barriers, via the use of specific biochemical assays, individuating eventual cross correlation with parameters relative to MetS through a Principal Component Analysis (PCA). The present study shows that 8 weeks of HFD induce MetS in rats, altering glucose and lipid homeostasis and increasing visceral adipose tissue, but also impairing the physiological antioxidant responses that could not counteract the oxidative stress condition. Crucially, cross-correlation analysis suggested that the assessment of specific oxidative stress parameters reported here can provide information comparable to the more widely acquired biomarkers of Mets such as glucose tolerance. Lastly, hepatic steatosis in association with the oxidative stress condition was also highlighted by histological analysis. This research will elucidate the fundamental impact of these oxidative stress parameters on MetS induced in the HFD rat model, tracing paths for developing prevention approaches.
Keyphrases
- high fat diet
- oxidative stress
- insulin resistance
- adipose tissue
- diabetic rats
- metabolic syndrome
- dna damage
- ischemia reperfusion injury
- induced apoptosis
- skeletal muscle
- uric acid
- cardiovascular disease
- type diabetes
- blood pressure
- high throughput
- weight loss
- blood glucose
- heat shock
- anti inflammatory
- signaling pathway
- single cell
- health information
- endoplasmic reticulum stress
- social media
- glycemic control
- cardiovascular risk factors
- heat shock protein