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Patients affected by long-chain 3-hydroxyacyl-CoA dehydrogenase (LCHAD) deficiency predominantly present severe liver and cardiac dysfunction, as well as neurological symptoms during metabolic crises, whose pathogenesis is still poorly known. In this study, we demonstrate for the first time that pathological concentrations of 3-hydroxypalmitic acid (3HPA), the long-chain hydroxyl fatty acid (LCHFA) that most accumulates in LCHAD deficiency, significantly decreased adenosine triphosphate-linked and uncoupled mitochondrial respiration in intact cell systems consisting of heart fibers, cardiomyocytes, and hepatocytes, but less intense in diced forebrain. 3HPA also significantly reduced mitochondrial Ca retention capacity and membrane potential in Ca -loaded mitochondria more markedly in the heart and the liver, with mild or no effects in the brain, supporting a higher susceptibility of the heart and the liver to the toxic effects of this fatty acid. It is postulated that disruption of mitochondrial energy and Ca homeostasis caused by the accumulation of LCHFA may contribute toward the severe cardiac and hepatic clinical manifestations observed in the affected patients.
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http://dx.doi.org/10.1002/jcb.27115 | DOI Listing |
FASEB J
September 2025
School of Biodiversity, One Health and Veterinary Medicine, Graham Kerr Building, College of Medical, Veterinary and Life Sciences, University of Glasgow, Glasgow, UK.
Most animals experience abrupt developmental transitions involving major tissue remodeling, but the links with metabolic changes remain poorly understood. We examined ontogenetic changes in mitochondrial volume, oxidative capacity, oxygen consumption capacity, and anaerobic capacity across four organs (gut, liver, heart, and hindlimb muscle) in Xenopus laevis from metamorphosis to adulthood. These organs differ in the extent of developmental transformation.
View Article and Find Full Text PDFJ Assist Reprod Genet
September 2025
Division of Reproductive and Developmental Sciences, Oregon National Primate Research Center, Oregon Health & Science University, Beaverton, OR, USA.
Purpose: To determine if melatonin-enriched culture media could offset loss of imprinting in mouse concepti.
Methods: Zygotes were cultured to blastocyst stage under optimized conditions in melatonin-supplemented media at either 10 M (MT 10) or 10 M (MT 10), or without supplementation (Culture + embryo transfer, or ET, positive control). Blastocysts were also developed in vivo (ET negative control).
Nat Commun
September 2025
Department of Biochemistry, University of Illinois, Urbana-Champaign, IL, USA.
Individuals with progressive liver failure risk dying without liver transplantation. However, our understanding of why regenerative responses are disrupted in failing livers is limited. Here, we perform multiomic profiling of healthy and diseased human livers using bulk and single-nucleus RNA- and ATAC-seq.
View Article and Find Full Text PDFHeart Lung Circ
September 2025
Department of Gastroenterology and Hepatology, Fiona Stanley Hospital, Murdoch, WA, Australia; Medical School, The University of Western Australia, Perth, WA, Australia; Curtin Medical School, Curtin University, Bentley, WA, Australia. Electronic address:
Metabolic dysfunction-associated steatotic liver disease (MASLD) is the most common chronic liver disease worldwide, with a reach extending beyond the liver to include other metabolic syndrome-related disorders. Cardiovascular disease and type 2 diabetes mellitus are recognised non-communicable disorders and often downstream complications of MASLD and share similar risk factors. However, MASLD has not been afforded parity alongside other cardiometabolic non-communicable disorders, including the cardiovascular-kidney-metabolic (CKM) syndrome.
View Article and Find Full Text PDFJ Vet Med Sci
September 2025
Noto Marine Laboratory, Institute of Nature and Environmental Technology, Kanazawa University.
Local anesthetics such as lidocaine have been used in humans and other animals to perform surgical procedures, therapeutics, and experiments. Lidocaine discarded into the environment through industrial waste, human and animal excretion, and household waste has been detected in the aquatic environment. For example, lidocaine in rivers, lakes, and influent and effluent water has been detected at wastewater treatment plants (7 ng/L-2.
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