Genetics
Review highlights zebrafish, which retain a cetp ortholog, as an emerging model for dyslipidaemia research (Front Endocrinol (Lausanne) 2016)
Original title: Zebrafish Models for Dyslipidemia and Atherosclerosis Research
This review surveys zebrafish as an emerging model organism for studying dyslipidaemia and atherosclerosis, given the substantial unmet need in treating atherosclerotic cardiovascular disease. Zebrafish retain a cetp ortholog gene and are highly sensitive to excess dietary cholesterol, rapidly developing hypercholesterolaemia with a lipoprotein-particle lipid distribution pattern similar to humans. The author highlights recent studies exploiting the optical transparency of zebrafish larvae to track ingested lipids in real time, offering insights into dyslipidaemia and atherosclerosis development, and discusses the technical and pharmacological potential of zebrafish for future in vivo cell-biological study of atherosclerotic plaques.
Original abstract
Atherosclerotic cardiovascular disease is the leading cause of death. Elevated circulating concentrations of lipids are a central pathogenetic driver of atherosclerosis. While numerous effective therapies for this condition have been developed, there is substantial unmet need for this pandemic illness. Here, I will review nutritional, physiological, genetic, and pathological discoveries in the emerging zebrafish model for studying dyslipidemia and atherosclerosis. The technical and physiological advantages and the pharmacological potential of this organism for discovery and validation of dyslipidemia and atherosclerosis targets are stressed through summary of recent findings. An emerging literature shows that zebrafish, through retention of a cetp ortholog gene and high sensitivity to ingestion of excess cholesterol, rapidly develops hypercholesterolemia, with a pattern of distribution of lipid species in lipoprotein particles similar to humans. Furthermore, recent studies leveraging the optical transparency of zebrafish larvae to monitor the fate of these ingested lipids have provided exciting insights to the development of dyslipidemia and atherosclerosis. Future directions for investigation are considered, with particular attention to the potential for in vivo cell biological study of atherosclerotic plaques.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 19 August 2026. Methods.