Dietary Eriodictyol Alleviates Adiposity, Hepatic Steatosis, Insulin Resistance, and Inflammation in Diet-Induced Obese Mice
Abstract
:1. Introduction
2. Results
2.1. Eriodictyol Supplementation Reduced Body Fat and Deposition and Regulated Gene Expression in Adipocytes
2.2. Eriodictyol Supplement Improved Plasma and Hepatic Lipid Levels, and Modulated the Expression of Hepatic Lipid-Regulating Enzymes and Genes
2.3. Eriodictyol Supplementation Ameliorated Insulin Resistance, Glucose Tolerance, and Adipokine/Cytokine Dysregulation
3. Discussion
4. Materials and Methods
4.1. Experimental Animals and Diet
4.2. Blood Analysis
4.3. Hepatic and Fecal Lipid Contents
4.4. Activities of Hepatic Lipid- and Glucose-Regulating Enzymes
4.5. RNA Isolation and Gene Expression Analysis
4.6. Morphological Examination of Liver and Fat Tissues
4.7. Statistical Analysis
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
MDPI | Multidisciplinary digital publishing institute |
ACC | Acetyl-CoA carboxylase |
AI | Atherogenic index |
APO | Apolipoprotein |
CPT | Carnitine palmitoyltransferase |
DIO | Diet-induced obese |
ED | Eriodictyol |
FAS | Fatty acid synthase |
FER | Food efficiency ratio |
FFA | Free fatty acid |
GIP | Gastric inhibitory polypeptide |
GK | Glucokinase |
GLP-1 | Glucagon-like peptide-1 |
G6Pase | Glucose-6-phosphatase |
G6PD | Glucose-6-phosphate dehydrogenase |
HFD | High-fat diet |
HOMA-IR | Homeostasis model assessment of insulin resistance |
HTR | HDL-cholesterol-to-TC ratio |
H&E | Hematoxylin and eosin |
IFN-γ | Interferon-gamma |
IL | Interleukin |
IPGTT | Intraperitoneal glucose tolerance test |
IR | Insulin resistance |
IRS2 | Insulin receptor substrate 2 |
ME | Malic enzyme |
NAFLD | Non-alcoholic fatty liver disease |
NASH | Non-alcoholic steatohepatitis |
PAI-1 | Plasminogen activator inhibitor-1 |
PAP | Phosphatidate phosphohydrolase |
PEPCK | Phosphoenolpyruvate carboxykinase |
PGC1α | PPAR-gamma coactivator 1 alpha |
PPARα | Peroxisome proliferator-activated receptor alpha |
SREBP | Sterol regulatory element-binding transcription factor |
TC | Total-cholesterol |
TG | Triglyceride |
WAT | White adipose tissue |
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Gene | Primer Direction | Primer Sequence |
---|---|---|
Glyceraldehyde 3-phosphate dehydrogenase (GAPDH) | Forward | 5′-CAAGTTCAACGGCACAGTCAAGG-3′ |
Reverse | 5′-ACATACTCAGCACCAGCATCACC-3′ | |
Peroxisome proliferator-activated receptor alpha (PPARα) | Forward | 5′-CCTGAACATCGAGTGTCGAATAT-3′ |
Reverse | 5′-GGTCTTCTTCTGAATCTTGCAGCT-3′ | |
PPAR-gamma coactivator 1alpha (PGC1α) | Forward | 5′-AAGTGTGGAACTCTCTGGAACTG-3′ |
Reverse | 5′-GGGTTATCTTGGTTGGCTTTATG-3′ | |
PGC1β | Forward | 5′-GGTCCCTGGCTGACATTCAC-3′ |
Reverse | 5′-GGCACATCGAGGGCAGAG-3′ | |
Sterol regulatory element-binding transcription factor 1a (SREBP1a) | Forward | 5′-TAGTCCGAAGCCGGGTGGGCGCCGGCGCCAT-3′ |
Reverse | 5′-GATGTCGTTCAAAACCGCTGTGTGTCCAGTTC-3′ | |
Acetyl-CoA carboxylase (ACC) | Forward | 5′- GCCTCTTCCTGACAAACGAG-3′ |
Reverse | 5′-TGACTGCCGAAACATCTCTG-3′ | |
Fatty acid synthase (FAS) | Forward | 5′-GCTGCGGAAACTTCAGGAAAT-3′ |
Reverse | 5′-AGAGACGTGTCACTCCTGGACTT-3′ | |
Steroly-CoA desaturase 1 (SCD1) | Forward | 5′-CCCCTGCGGATCTTCCTTAT-3′ |
Reverse | 5′-AGGGTCGGCGTGTGTTTCT-3′ | |
Lipoprotein lipase (LPL) | Forward | 5′-GACTCGCTCTCAGATGCCCTAC-3′ |
Reverse | 5′-GCCTGGTTGTGTTGCTTGCC-3′ | |
CD antigen 36 (CD36) | Forward | 5′-TGGTGGATGGTTTCCTAGCCTTTC-3′ |
Reverse | 5′-TCGCCAACTCCCAGGTACAATC-3′ | |
Adrenoreceptor beta 3 (ADRB3) | Forward | 5′-ACCAACGTGTTCGTGACT-3′ |
Reverse | 5′-ACAGCTAGGTAGCGGTCC-3′ | |
CPT2 | Forward | 5′-GCCTGCTGTTGCGTGACTG-3′ |
Reverse | 5′-TGGTGGGTACGATGCTGTGC-3′ | |
Cytochrome c oxidase subunit 8B (COX8B) | Forward | 5′-TGTGGGGATCTCAGCCATAGT-3′ |
Reverse | 5′-AGTGGGCTAAGACCCATCCTG-3′ | |
Uncoupling protein 1 (UCP1) | Forward | 5′-AGATCTTCTCAGCCGGAGTTT-3′ |
Reverse | 5′-CTGTACAGTTTCGGCAATCCT-3′ | |
Insulin receptor substrate 2 (IRS2) | Forward | 5′-CCCATGTCCCGCCGTGAAG-3′ |
Reverse | 5′-CTCCAGTGCCAAGGTCTGAAGG-3′ | |
Phosphoenol pyruvate carboxykinase (PEPCK) | Forward | 5′-ATCATCTTTGGTGGCCGTAG-3′ |
Reverse | 5′-ATCTTGCCCTTGTGTTCTGC-3′ | |
Glucose-6-phosphatase (G6PC) | Forward | 5′-GGAGGAAGGATGGAGGAAGGAATG-3′ |
Reverse | 5′-GGTCAGCAATCACAGACACAAGG-3′ |
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Kwon, E.-Y.; Choi, M.-S. Dietary Eriodictyol Alleviates Adiposity, Hepatic Steatosis, Insulin Resistance, and Inflammation in Diet-Induced Obese Mice. Int. J. Mol. Sci. 2019, 20, 1227. https://doi.org/10.3390/ijms20051227
Kwon E-Y, Choi M-S. Dietary Eriodictyol Alleviates Adiposity, Hepatic Steatosis, Insulin Resistance, and Inflammation in Diet-Induced Obese Mice. International Journal of Molecular Sciences. 2019; 20(5):1227. https://doi.org/10.3390/ijms20051227
Chicago/Turabian StyleKwon, Eun-Young, and Myung-Sook Choi. 2019. "Dietary Eriodictyol Alleviates Adiposity, Hepatic Steatosis, Insulin Resistance, and Inflammation in Diet-Induced Obese Mice" International Journal of Molecular Sciences 20, no. 5: 1227. https://doi.org/10.3390/ijms20051227