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Short-Term Neonatal Oral Administration of Oleanolic Acid Protects against Fructose-Induced Oxidative Stress in the
Trevor Tapiwa Nyakudya1, Simon Isaiah2, Ademola Ayeleso3
1Department of Human Anatomy and Physiology, Faculty of Health Sciences, University of Johannesburg, Doornfontein, Johannesburg 2028, South Africa. trevorn@uj.ac.za.
Insights
Neonatal oleanolic acid (OA) administration protected against fructose-induced oxidative stress in rats. This intervention improved antioxidant levels and prevented negative health outcomes without impacting growth or gastrointestinal development.
Area of Science:
- Biochemistry
- Developmental Biology
- Nutritional Science
Background:
- Neonatal nutrition significantly influences long-term health, with excessive fructose linked to metabolic syndrome and oxidative stress.
- Oleanolic acid (OA) exhibits anti-diabetic and anti-obesity properties, suggesting potential protective roles.
Purpose of the Study:
- To evaluate the protective effects of neonatal oleanolic acid (OA) administration against fructose-induced oxidative stress.
- To assess OA's impact on adverse health outcomes and gastrointestinal tract (GIT) maturation in suckling rats exposed to fructose.
Main Methods:
- Seven-day-old Sprague-Dawley rats received daily gavage of distilled water, OA (60 mg/kg), high fructose (HF; 20%), or OA+HF for 7 days.
- Evaluated clinical health, hepatic lipid content, antioxidant enzyme activity (catalase), oxidative stress biomarkers, and GIT morphometry on day 14.
Main Results:
- Neonatal fructose administration induced oxidative stress, marked by decreased catalase activity, reduced glutathione (GSH), and increased lipid peroxidation.
- OA treatment significantly improved GSH levels and catalase activity in fructose-exposed rats.
- No significant adverse effects on body mass, GIT morphometry, general health markers, or liver lipid content were observed.
Conclusions:
- Short-term oral OA administration during the neonatal period effectively protects against fructose-induced oxidative stress.
- OA treatment mitigates adverse health effects associated with fructose exposure without negatively impacting growth or gastrointestinal development in young rats.
Abstract:
Nutritional manipulations in the neonatal period are associated with the development of negative or positive health outcomes later in life. Excessive fructose consumption has been attributed to the increase in the global prevalence of metabolic syndrome (MetS) and the development of oxidative stress. Oleanolic acid (OA) has anti-diabetic and anti-obesity effects. We investigated the protective potential of orally administering OA in the neonatal period, to prevent fructose-induced oxidative stress, adverse health outcomes and maturation of the gastrointestinal tract (GIT) in suckling rats. Seven-day old Sprague-Dawley rats (N = 30) were gavaged daily with 10 mL/kg of: distilled water (DW), oleanolic acid (OA; 60 mg/kg), high fructose solution (HF; 20% w/v), or OAHF for 7 days. On day 14, tissue samples were collected to determine clinical health profiles, hepatic lipid content, and activity of anti-oxidant enzymes. Furthermore, biomarkers of oxidative stress and anti-oxidant capacity in the skeletal muscles were assessed. The gastrointestinal tract (GIT) morphometry was measured. Rats in all groups grew over the 7-day treatment period. There were no significant differences in the terminal body masses, GIT morphometry, surrogate markers of general health, liver lipid content across all treatment groups (p < 0.05). Neonatal fructose administration decreased the activity of catalase, depleted GSH and increased lipid peroxidation. However, the level of GSH and catalase activity were improved by neonatal OA treatment. Short-term oral OA administration during the critical developmental period protects against fructose-induced oxidative stress without adverse effects on health outcomes associated with MetS or precocious development of the GIT in suckling male and female rats.
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