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Updated: Mar 22, 2026

A Familial Hypercholesterolemia Human Liver Chimeric Mouse Model Using Induced Pluripotent Stem Cell-derived Hepatocytes
Published on: September 15, 2018
Deficiency of the oxygen sensor prolyl hydroxylase 1 attenuates hypercholesterolaemia, atherosclerosis, and
Elke Marsch1, Jasper A F Demandt1, Thomas L Theelen1
1Department of Pathology, CARIM, MUMC, P. Debyelaan 25, Maastricht 6229 HX, The Netherlands.
Aims:
Normalization of hypercholesterolaemia, inflammation, hyperglycaemia, and obesity are main desired targets to prevent cardiovascular clinical events. Here we present a novel regulator of cholesterol metabolism, which simultaneously impacts on glucose intolerance and inflammation.
Methods And Results:
Mice deficient for oxygen sensor HIF-prolyl hydroxylase 1 (PHD1) were backcrossed onto an atherogenic low-density lipoprotein receptor (LDLR) knockout background and atherosclerosis was studied upon 8 weeks of western-type diet. PHD1-/-LDLR-/- mice presented a sharp reduction in VLDL and LDL plasma cholesterol levels. In line, atherosclerotic plaque development, as measured by plaque area, necrotic core expansion and plaque stage was hampered in PHD1-/-LDLR-/- mice. Mechanistically, cholesterol-lowering in PHD1 deficient mice was a result of enhanced cholesterol excretion from blood to intestines and ultimately faeces. Additionally, flow cytometry of whole blood of these mice revealed significantly reduced counts of leucocytes and particularly of Ly6Chigh pro-inflammatory monocytes. In addition, when studying PHD1-/- in diet-induced obesity (14 weeks high-fat diet) mice were less glucose intolerant when compared with WT littermate controls.
Conclusion:
Overall, PHD1 knockout mice display a metabolic phenotype that generally is deemed protective for cardiovascular disease. Future studies should focus on the efficacy, safety, and gender-specific effects of PHD1 inhibition in humans, and unravel the molecular actors responsible for PHD1-driven, likely intestinal, and regulation of cholesterol metabolism.
Insights
Mice lacking HIF-prolyl hydroxylase 1 (PHD1) showed reduced cholesterol, inflammation, and glucose intolerance. This suggests PHD1 inhibition may offer a novel strategy for preventing cardiovascular disease.
Area of Science:
- Biochemistry
- Metabolic disease
- Cardiovascular research
Background:
- Cardiovascular disease prevention requires managing hypercholesterolemia, inflammation, hyperglycemia, and obesity.
- Novel regulators impacting multiple metabolic pathways are needed.
Purpose of the Study:
- To investigate the role of HIF-prolyl hydroxylase 1 (PHD1) in cholesterol metabolism, glucose intolerance, and inflammation.
- To assess the impact of PHD1 deficiency on atherosclerosis development.
Main Methods:
- Mice lacking PHD1 were crossed with low-density lipoprotein receptor (LDLR) knockout mice.
- Atherosclerosis was induced by a western-type diet.
- Metabolic parameters including cholesterol levels, glucose tolerance, and immune cell populations were analyzed.
Main Results:
- PHD1 deficiency significantly reduced plasma VLDL and LDL cholesterol levels.
- Atherosclerotic plaque development was reduced in PHD1 knockout mice.
- PHD1 deficiency improved glucose tolerance and reduced pro-inflammatory monocytes.
Conclusions:
- PHD1 knockout mice exhibit a metabolic profile protective against cardiovascular disease.
- PHD1 inhibition warrants further investigation for potential therapeutic applications in human cardiovascular health.
- Further research is needed to elucidate the mechanisms of PHD1-regulated cholesterol metabolism.
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