Hayata is a small, green citrus fruit native to Taiwan and Japan. Citrus peel contains polymethoxylated flavones, including nobiletin and tangeretin, and may exhibit strong antioxidant and anti-inflammatory activities. A preliminary study revealed that Hayata peel (CDHP) ethanolic extract reduced fat accumulation and the concentration of reactive oxygen species in human HepG2 cells exposed to oleic acid. The effects of CDHP on the activity of hepatic drug-metabolizing enzymes and membrane transporters in high-fat (HF) diet-induced fatty liver were investigated. Male rats were fed a low-fat diet, a HF diet, and a HF diet containing 4% CDHP for 11 weeks. The low-fat and HF diet respectively contained 13.5% and 38.1% of daily total calories from dietary fat. CDHP supplementation reduced the HF diet-induced accumulation of triglycerides in the liver and lowered hepatic fatty acid synthase activity. Higher faecal excretions of cholesterol, triglycerides, and total bile acids were observed after CDHP treatment. CDHP lowered the HF diet-induced increase in the mRNA expressions of nuclear factor erythroid 2-related factor 2, aryl hydrocarbon receptor, pregnane X receptor, and peroxisome proliferator-activated receptor-α and the activities of cytochrome P-450 (CYP)1A1, 1A2, 2B, and 2E1. However, increased hepatic CYP3A activity was observed in rats fed the HF diet containing CDHP. A higher hepatic multidrug resistance-associated protein 2 level was observed after CDHP treatment. After CDHP administration (1 g per kg body weight) for 1 h, nobiletin was found in plasma and various tissues and was abundant in the liver. An study revealed that the activity of various CYP enzymes in liver microsomes was inhibited by CDHP ethanolic extract and nobiletin, with IC values ranging from 18.5 to 54.4 μg ml and from 13.0 to 33.2 μM, respectively. The results of this study suggest that CDHP might reduce hepatic steatosis and alter drug-metabolizing enzymes and transporters in HF diet-induced nonalcoholic fatty liver diseases.
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http://dx.doi.org/10.1039/d1fo03597e | DOI Listing |
Hepatol Commun
November 2024
Paediatric Liver, GI and Nutrition Centre and Mowatlabs, King's College Hospital, London, UK.
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January 2025
Department of Medicine, Division of Gastroenterology and Hepatology, Shinshu University School of Medicine, 3-1-1 Asahi, Matsumoto, Nagano, 390-8621, Japan.
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January 2025
Center for Digital and Translational Biomedicine, Center for Molecular Health LLC, Moscow, Russia.
Changes in the lipid and carbohydrate metabolism, adipokines, and growth factors during the development of metabolic disorders were studied in three mouse models: C57BL/6 (alimentary obesity), db/db (leptin-resistant obesity), and NOD (diabetes mellitus) lines. In the group of alimentary obesity, moderate fatty infiltration of the liver and hypertrophy of the adipose tissue, hyperglycemia, and increased concentrations of adiponectin, transforming growth factor β1 (TGF-β1), leptin, and cholesterol were detected. In the group of leptin-resistant obesity, multiple pathological changes in tissues, severe hyperglycemia and hyperleptinemia, hyperinsulinemia, and reduced concentrations of triglycerides, adiponectin, myostatin, and TGF-β1 were detected.
View Article and Find Full Text PDFFood Funct
January 2025
College of Food Science and Engineering, Northwest A&F University, Yangling 712100, China.
This study explores the therapeutic potential of ω-3 algal oil (rich in DHA) and ω-7 sea buckthorn oil (rich in palmitoleic acid) in addressing hyperlipidemia and associated metabolic disorders. These oils regulate lipid metabolism through the PPARγ-LXRα-ABCA1/ABCG1 signaling pathway, reducing cholesterol accumulation, oxidative stress, and inflammation. In high-fat diet-induced hyperlipidemic mice, supplementation with these oils significantly improved lipid profiles, alleviated hepatic steatosis, and promoted cardiovascular health.
View Article and Find Full Text PDFFront Microbiol
December 2024
Department of Gastroenterology, Yan'an Hospital Affiliated to Kunming Medical University, Kunming, China.
Background/aim: The purpose of this study was to examine the hepatic bacterial composition and metabolome characteristics of patients with NAFLD using 16S rDNA sequencing and metabolomics. The results of the study revealed substantial differences in hepatic bacterial composition and metabolites between the NAFLD group and the control group. These differences were used to identify potential biomarkers that could be employed to diagnose NAFLD.
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