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Updated: Jul 26, 2026

High-fat Feeding Paradigm for Larval Zebrafish: Feeding, Live Imaging, and Quantification of Food Intake
Published on: October 27, 2016
Aging increases susceptibility to high-fat diet-induced neurobehavioral and mitochondrial dysfunction in zebrafish
Victor L Picolo1, Letícia A Tavares1, Whitney R Santos2
1Laboratory of Bioenergetic and Metabolism, Institute of Biological Sciences, University of Brasilia, Brasilia, Brazil; Graduate Program in Molecular Pathology, School of Health Sciences, University of Brasilia, Brasilia, Brazil.
None:
Aging and unhealthy eating habits independently and synergistically disrupt central nervous system (CNS) homeostasis, increasing susceptibility to neurological and behavioral disorders. Mitochondria plays a critical role in maintaining neuronal survival and activity, representing a central player in the pathogenesis of neurodegenerative diseases. Here, we used zebrafish as a model to investigate how aging and a high-fat diet (HFD) affect brain bioenergetics and behavior. Young (4-6 months) and aged (17-22 months) male zebrafish were fed either a standard diet or an HFD based on boiled chicken egg yolk for 14 days. Brain mitochondria was evaluated using high-resolution respirometry, transmission electron microscopy (TEM), and qRT-PCR. HFD impaired the metabolic health of both young and aged animals, promoting weight gain, increased abdominal length, and elevated fasting glucose levels. Aging intensified the HFD detrimental effects on behavior: aged HFD-fed zebrafish displayed increased anxiety-like behavior in the novel tank test, and impaired cognitive performance in the T-maze test. Notably, HFD had no significant effect on aggressive behavior regardless of age. Mitochondrial responses to HFD differed by age: while cerebral bioenergetic function declined in young fish, aged animals showed an opposite trend. TEM analysis revealed increased accumulation of fragmented mitochondria in HFD group, indicating potential mitochondrial dysfunction. RT-qPCR showed upregulation of genes involved in the electron transport chain, especially in aged zebrafish. In conclusion, our findings demonstrate an age-dependent vulnerability to the effects of HFD on both neurobehavioral and mitochondrial parameters.
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