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A Familial Hypercholesterolemia Human Liver Chimeric Mouse Model Using Induced Pluripotent Stem Cell-derived Hepatocytes
Published on: September 15, 2018
Identification of a Gain-of-Function LIPC Variant as a Novel Cause of Familial Combined Hypocholesterolemia
Wieneke Dijk1, Mathilde Di Filippo2,3, Sander Kooijman4
1Nantes Université, CHU Nantes, CNRS, INSERM, l'institut du thorax, France (W.D., A.R., A.C., A.T., L.A., D.G., T.S., P.L., K.S.-T., C.L.M., B.C.).
Insights
A novel LIPC gene variant causes familial combined hypocholesterolemia by increasing hepatic lipase phospholipase activity. This discovery highlights a new mechanism for LDL cholesterol regulation.
Area of Science:
- Genetics
- Biochemistry
- Cardiovascular Disease
Background:
- Atherosclerotic cardiovascular disease is a leading cause of death globally.
- Low-density lipoprotein (LDL) cholesterol levels significantly influence cardiovascular disease risk.
- Only a few genes, including ANGPTL3, are known to be causally linked to combined hypocholesterolemia.
Purpose of the Study:
- To investigate the genetic basis of unexplained combined hypocholesterolemia in a French family across four generations.
- To identify the specific gene variant responsible for the inherited lipid disorder.
Main Methods:
- Next-generation sequencing to identify genetic variants.
- Lipid and lipoprotein profiling using nuclear magnetic resonance and lipidomics.
- In vitro cell culture assays and in vivo studies in genetically modified mice (APOE*3.Leiden.CETP) to characterize variant function.
Main Results:
- A novel dominant rare variant, LIPC-E97G, in the LIPC gene (encoding hepatic lipase) was identified and cosegregated with the hypocholesterolemia phenotype.
- LIPC-E97G carriers exhibited significantly lower LDL cholesterol, HDL cholesterol, and LDL particle numbers.
- Mechanistic studies revealed that LIPC-E97G enhances hepatic lipase phospholipase activity, promoting triglyceride-rich lipoprotein catabolism in extrahepatic tissues.
Conclusions:
- A new LIPC gene variant, LIPC-E97G, is causally linked to dominant familial combined hypocholesterolemia.
- This gain-of-function variant establishes LIPC as the second gene, after ANGPTL3, involved in this condition.
- The findings underscore the importance of hepatic lipase phospholipase activity in LDL cholesterol homeostasis and suggest a novel pathway for LDL clearance.
Background:
Atherosclerotic cardiovascular disease is the main cause of mortality worldwide and is strongly influenced by circulating low-density lipoprotein (LDL) cholesterol levels. Only a few genes causally related to plasma LDL cholesterol levels have been identified so far, and only 1 gene, ANGPTL3, has been causally related to combined hypocholesterolemia. Here, our aim was to elucidate the genetic origin of an unexplained combined hypocholesterolemia inherited in 4 generations of a French family.
Methods:
Using next-generation sequencing, we identified a novel dominant rare variant in the LIPC gene, encoding for hepatic lipase, which cosegregates with the phenotype. We characterized the impact of this LIPC-E97G variant on circulating lipid and lipoprotein levels in family members using nuclear magnetic resonance-based lipoprotein profiling and lipidomics. To uncover the mechanisms underlying the combined hypocholesterolemia, we used protein homology modeling, measured triglyceride lipase and phospholipase activities in cell culture, and studied the phenotype of APOE*3.Leiden.CETP mice after LIPC-E97G overexpression.
Results:
Family members carrying the LIPC-E97G variant had very low circulating levels of LDL cholesterol and high-density lipoprotein cholesterol, LDL particle numbers, and phospholipids. The lysophospholipids/phospholipids ratio was increased in plasma of LIPC-E97G carriers, suggestive of an increased lipolytic activity on phospholipids. In vitro and in vivo studies confirmed that the LIPC-E97G variant specifically increases the phospholipase activity of hepatic lipase through modification of an evolutionarily conserved motif that determines substrate access to the hepatic lipase catalytic site. Mice overexpressing human LIPC-E97G recapitulated the combined hypocholesterolemic phenotype of the family and demonstrated that the increased phospholipase activity promotes catabolism of triglyceride-rich lipoproteins by different extrahepatic tissues but not the liver.
Conclusions:
We identified and characterized a novel rare variant in the LIPC gene in a family who presents with dominant familial combined hypocholesterolemia. This gain-of-function variant makes LIPC the second identified gene, after ANGPTL3, causally involved in familial combined hypocholesterolemia. Our mechanistic data highlight the critical role of hepatic lipase phospholipase activity in LDL cholesterol homeostasis and suggest a new LDL clearance mechanism.
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