ArticleNutrition & metabolism2018
Associations between fatty acid oxidation, hepatic mitochondrial function, and plasma acylcarnitine levels in mice.
Article in Nutrition & metabolism, 2018. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 57 papers, 2 of them syntheses that pooled it.
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Who cites it
57 citing papers in PubMed, 2 syntheses or guidelines pooled it, 95 citations in OpenAlex.
- Lipid Peroxidation in Diabetic Kidney Disease: Mechanism and Natural Solution.International journal of molecular sciences · 2025Pooled it
- The Metabolomics of Chronic Pain Conditions: A Systematic Review.Biological research for nursing · 2020Pooled it
- Plasma Metabolomic Alterations Are Associated with T-Cell Senescence, Cytokine Dysregulation, and Prognosis in Elderly COVID-19 Patients.Biomedicines · 2026Article
- Multi-Omics Analyses of the Gut Microbiota and Metabolism in Cats with Different Body Conditions and the Effects of Fecal Microbiota Transplantation.Veterinary sciences · 2026Article
- The impact of lipid-rich nutrition on ketogenesis and muscle weakness in sepsis.Intensive care medicine experimental · 2026Article
- The human metabolome and machine learning improves predictions of the post-mortem interval.Nature communications · 2026Article
- Hyperglycemia- induced innate immune tolerance involves the metabolic and epigenetic rewiring in human alveolar macrophages.Frontiers in immunology · 2026Article
- Ketogenic Nutrition in Combination With PPARα Activation Induced Metabolic Failure and Exacerbated Muscle Weakness in Septic Mice.Journal of cachexia, sarcopenia and muscle · 2025Article
- Early Gestational Hepatic Lipidomic Profiles Are Modulated by One-Carbon Metabolite Supplementation and Nutrient Restriction in Beef Heifers and Fetuses.Metabolites · 2025Article
- Acylcarnitine and Free Fatty Acid Profiles in Primary Biliary Cholangitis: Associations with Fibrosis and Inflammation.Nutrients · 2025Article
- Comprehensive review of the expanding roles of the carnitine pool in metabolic physiology: beyond fatty acid oxidation.Journal of translational medicine · 2025Review
- The Therapeutic Potential of Orange Juice in Cardiac Remodeling: A Metabolomics Approach.Metabolites · 2025Article
- The gut-liver axis links the associations between serum carotenoids and non-alcoholic fatty liver in a 7.8-year prospective study.Hepatobiliary surgery and nutrition · 2025Article
- Gut microbiome and metabolome signatures in liver cirrhosis-related complications.Clinical and molecular hepatology · 2024Article
- Meldonium-induced steatosis is associated with increased delta 6 desaturation and reduced elongation of n-6 polyunsaturated fatty acids.Liver research (Beijing, China) · 2024Article
- Article
- Characteristics of microbiome-derived metabolomics according to the progression of alcoholic liver disease.Hepatology international · 2024Article
- Article
- Effect ofInternational journal of molecular sciences · 2023Article
- Preconception and developmental DEHP exposure alter liver metabolism in a sex-dependent manner in adult mouse offspring.Toxicology · 2023Article
Corrections and comments
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Authors and funding
6 authors at 2 institutions in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
backgroundThe 4-thia fatty acid tetradecylthiopropionic acid (TTP) is known to inhibit mitochondrial β-oxidation, and can be used as chemically induced hepatic steatosis-model in rodents, while 3-thia fatty acid tetradecylthioacetic acid (TTA) stimulates fatty acid oxidation through activation of peroxisome proliferator activated receptor alpha (PPARα). We wished to determine how these two compounds affected in vivo respiration and mitochondrial efficiency, with an additional goal to elucidate whether mitochondrial function is reflected in plasma acylcarnitine levels.
methodsC57BL/6 mice were divided in 4 groups of 10 mice and fed a control low-fat diet, low-fat diets with 0.4% (
resultsThe TTP diet resulted in hepatic lipid accumulation, plasma L-carnitine and acetylcarnitine depletion and elevated palmitoylcarnitine and non-esterified fatty acid levels. No significant lipid accumulation was observed in heart. The TTA supplement resulted in enhanced hepatic β-oxidation, accompanied by an increased level of acetylcarnitine and palmitoylcarnitine in plasma. Analysis of mitochondrial respiration showed that TTP reduced oxidative phosphorylation, while TTA increased the maximum respiratory capacity of the electron transport system. Combined treatment with TTP and TTA resulted in a profound stimulation of genes involved in the PPAR-response and L-carnitine metabolism, and partly prevented triacylglycerol accumulation in the liver concomitant with increased peroxisomal β-oxidation and depletion of plasma acetylcarnitines. Despite an increased number of mitochondria in the liver of TTA + TTP fed mice, the OXPHOS capacity was significantly reduced.
conclusionThis study indicates that fatty acid β-oxidation directly affects mitochondrial respiratory capacity in liver. As plasma acylcarnitines reflected the reduced mitochondrial β-oxidation in TTP-fed mice, they could be useful tools to monitor mitochondrial function. As mitochondrial dysfunction is a major determinant of metabolic disease, this supports their use as plasma markers of cardiovascular risk in humans. Results however indicate that high PPAR activation obscures the interpretation of plasma acylcarnitine levels.
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