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Published on: October 12, 2017
COPI Coatomer Regulates Several Steps of HDL Metabolism
Grigorios Panteloglou1, Paolo Zanoni1, Christopher S Law2
1Institute for Clinical Chemistry (G.P., P.Z., M.Y., S.K., A.P., E.S., S.R., S.H., J.R., L.R., A.v.E.), University of Zürich and University Hospital Zürich, Switzerland.
Insights
The COPI coatomer complex regulates high-density lipoprotein (HDL) uptake and cholesterol transport in liver cells. This finding reveals new molecular determinants influencing HDL-cholesterol levels in the blood.
Area of Science:
- Molecular Biology
- Lipid Metabolism
- Cell Biology
Background:
- High-density lipoproteins (HDLs) are crucial for reverse cholesterol transport, an antiatherogenic pathway.
- Hepatocytes play a key role in HDL metabolism through apoA-I production, lipidation, and cholesterol uptake.
- The mechanisms governing HDL particle uptake by hepatocytes are not fully understood.
Purpose of the Study:
- To identify genes regulating the uptake of HDL particles into hepatocytes.
- To elucidate the molecular mechanisms controlling HDL holoparticle uptake.
- To investigate the role of identified genes in HDL metabolism and plasma HDL-C levels.
Main Methods:
- Genome-wide RNA interference screen in Huh-7 hepatocarcinoma cells using fluorescently labeled HDL.
- Validation of top hit genes through in vitro experiments.
- Association analysis of gene variants with HDL-C levels in human population databases (Global Lipids Genetics Consortium, UK Biobank) and mouse models.
Main Results:
- Knockdown of 128 genes inhibited HDL uptake; six encode COPI coatomer components (COPA, COPB1, COPB2, COPG1, ARCN1, COPZ1).
- COPI component knockdown reduced HDL particle and lipid uptake, SR-BI abundance, and apoA-I secretion, while increasing ABCA1 abundance.
- Common ARCN1 and COPB1 variants correlated with higher HDL-C; rare COPA and COPG1 variants linked to lower HDL-C and immunopathies.
Conclusions:
- The COPI coatomer complex is a key regulator of HDL holoparticle uptake in hepatocytes.
- COPI influences selective lipid uptake, apoA-I secretion, and cholesterol efflux.
- The COPI coatomer's function in hepatocytes significantly impacts plasma HDL-C levels.
Background:
Reverse cholesterol transport by HDLs (high-density lipoproteins) is considered an antiatherogenic metabolic pathway. Hepatocytes are the main contributors to the efficacy of this pathway by the production of apoA-I (apolipoprotein A1) and its lipidation by ABCA1 (ATP-binding cassette transporter A1), selective uptake of cholesterol via SR-BI (scavenger receptor class B type 1), and uptake of entire HDL particles. The molecular determinants of the latter step are not well understood.
Methods:
We performed a genome-wide RNA interference screen for genes limiting the uptake of HDL fluorescently labeled at its protein moiety into Huh-7 hepatocarcinoma cells. Top hit genes were validated by targeted in vitro experiments and the analysis of associations between their variants and HDL-C (HDL-cholesterol) levels in the databases of the Global Lipids Genetics Consortium and the UK Biobank, as well as inborn errors of metabolism and their respective mouse models.
Results:
The knockdown of 128 genes significantly inhibited HDL uptake. Six of them encode components of the COPI (coat protein I) coatomer, namely, COPA, COPB1, COPB2, COPG1, ARCN1, and COPZ1. Knocking down any of them decreased the uptake of both fluorescently labeled proteins and lipids of HDL, the cell surface abundance of SR-BI, and APOA1 expression and apoA-I secretion but increased the cell surface abundance of ABCA1. Common single-nucleotide polymorphisms of ARCN1 and COPB1 were associated with significantly higher HDL-C levels in the population, while rare COPA and COPG1 variants causing immunopathies were associated with rather lower levels of HDL-C in both affected patients and the corresponding genetically modified mice.
Conclusions:
In hepatocytes, the COPI coatomer regulates HDL holoparticle uptake, selective lipid uptake, apoA-I secretion, and cholesterol efflux, and thereby, it influences plasma levels of HDL-C.
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