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Body Composition and Metabolic Caging Analysis in High Fat Fed Mice
Published on: May 24, 2018
Short-term fructose feeding alters tissue metabolic pathways by modulating microRNAs expression both in young and
Giuseppe Petito1, Antonia Giacco2, Federica Cioffi2
1Department of Environmental, Biological and Pharmaceutical Sciences and Technologies, University of Campania "L. Vanvitelli", Caserta, Italy.
Insights
High fructose diet causes oxidative stress, inflammation, and metabolic issues in young and adult rats. Specific microRNAs (miRNAs) are implicated in these fructose-induced metabolic disruptions across different ages and tissues.
Area of Science:
- Metabolic research
- Epigenetics
- Nutritional science
Background:
- Dietary high fructose (HFrD) is a known metabolic disruptor linked to obesity, diabetes, and dyslipidemia.
- Children exhibit heightened sensitivity to sugar's metabolic effects compared to adults.
- MicroRNAs (miRNAs) are emerging as key epigenetic factors in metabolic tissue injury.
Purpose of the Study:
- Investigate the role of miR-122-5p, miR-34a-5p, and miR-125b-5p in fructose overconsumption effects.
- Evaluate differential miRNA regulation between young and adult animal models.
- Elucidate mechanisms of HFrD-induced metabolic alterations and their age-dependent variations.
Main Methods:
- Utilized young (30-day-old) and adult (90-day-old) rats as animal models.
- Administered a high fructose diet (HFrD) for a short duration (2 weeks).
- Analyzed systemic oxidative stress, inflammation, and specific miRNA expression in liver, skeletal muscle, and adipose tissue.
Main Results:
- HFrD induced systemic oxidative stress, inflammation, and metabolic perturbations in both age groups.
- Adult rats showed impaired insulin sensitivity and triglyceride accumulation in skeletal muscle via the miR-122-5p axis.
- Liver and skeletal muscle exhibited altered fat metabolism (decreased oxidation, increased synthesis) regulated by miR-34a-5p.
- Antioxidant enzyme imbalance and modified de novo lipogenesis were observed in young and adult rats.
Conclusions:
- miRNA modulation plays a significant, tissue-specific role in HFrD-induced metabolic dysfunction.
- Specific miRNA axes (e.g., miR-122-5p, miR-34a-5p, miR-125b-5p) are critical in mediating fructose's impact on metabolic pathways.
- Age-dependent differences in miRNA regulation contribute to varied responses to HFrD, highlighting the importance of studying diverse age groups.
Abstract:
Dietary high fructose (HFrD) is known as a metabolic disruptor contributing to the development of obesity, diabetes, and dyslipidemia. Children are more sensitive to sugar than adults due to the distinct metabolic profile, therefore it is especially relevant to study the metabolic alterations induced by HFrD and the mechanisms underlying such changes in animal models of different ages. Emerging research suggests the fundamental role of epigenetic factors such as microRNAs (miRNAs) in metabolic tissue injury. In this perspective, the aim of the present study was to investigate the involvement of miR-122-5p, miR-34a-5p, and miR-125b-5p examining the effects induced by fructose overconsumption and to evaluate whether a differential miRNA regulation exists between young and adult animals. We used young rats (30 days) and adult rats (90 days) fed on HFrD for a short period (2 weeks) as animal models. The results indicate that both young and adult rats fed on HFrD exhibit an increase in systemic oxidative stress, the establishment of an inflammatory state, and metabolic perturbations involving the relevant miRNAs and their axes. In the skeletal muscle of adult rats, HFrD impair insulin sensitivity and triglyceride accumulation affecting the miR-122-5p/PTP1B/P-IRS-1(Tyr612) axis. In liver and skeletal muscle, HFrD acts on miR-34a-5p/SIRT-1: AMPK pathway resulting in a decrease of fat oxidation and an increase in fat synthesis. In addition, liver and skeletal muscle of young and adult rats exhibit an imbalance in antioxidant enzyme. Finally, HFrD modulates miR-125b-5p expression levels in liver and white adipose tissue determining modifications in de novo lipogenesis. Therefore, miRNA modulation displays a specific tissue trend indicative of a regulatory network that contributes in targeting genes of various pathways, subsequently yielding extensive effects on cell metabolism.
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