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Updated: Mar 23, 2026

LDL Cholesterol Uptake Assay Using Live Cell Imaging Analysis with Cell Health Monitoring
Published on: November 17, 2018
Endocytic adaptors Arh and Dab2 control homeostasis of circulatory cholesterol
Wensi Tao1, Robert Moore1, Yue Meng1
1Department of Cell Biology, Molecular Cell and Developmental Biology Graduate Program, Sylvester Comprehensive Cancer Center, University of Miami Miller School of Medicine, Miami, FL 33136.
Insights
Autosomal recessive hypercholesterolemia (ARH) and Disabled-2 (Dab2) adaptors are crucial for LDL receptor (LDLR) function. Combined deletion of ARH and DAB2 in mice leads to severe hypercholesterolemia, impacting cholesterol homeostasis.
Area of Science:
- Biochemistry
- Genetics
- Molecular Biology
Background:
- High serum cholesterol (hypercholesterolemia) is a major risk factor for cardiovascular diseases.
- Low-density lipoprotein (LDL) receptor (LDLR)-mediated endocytosis is critical for regulating serum LDL levels.
- Autosomal recessive hypercholesterolemia (ARH) is linked to mutations in an LDLR endocytic adaptor protein.
Purpose of the Study:
- To investigate the role of the LDLR endocytic adaptor Disabled-2 (Dab2) in cholesterol homeostasis.
- To determine the combined effect of ARH and Dab2 on LDLR function and serum cholesterol levels.
Main Methods:
- Genetic analysis of mutant mice lacking arh and/or dab2 genes.
- Measurement of serum cholesterol levels and HMG-CoA reductase levels.
- Analysis of LDLR endocytosis and cholesterol metabolism.
Main Results:
- Deletion of Dab2 alone had minimal impact on serum cholesterol.
- Combined deletion of arh and dab2 genes in mice resulted in profound hypercholesterolemia, comparable to LDLR knockout.
- In the absence of ARH, Dab2 in liver endothelial cells regulates hepatocyte cholesterol synthesis, indicated by increased HMG-CoA reductase levels.
Conclusions:
- ARH and Dab2 are the primary adaptors responsible for LDLR endocytosis.
- The combined function of ARH and Dab2 is essential for maintaining cholesterol homeostasis through LDLR-mediated pathways.
Abstract:
High serum cholesterol (hypercholesterolemia) strongly associates with cardiovascular diseases as the atherogenic LDLs promote atheroma development in arteries (atherosclerosis). LDL clearance from the circulation by LDL receptor (LDLR)-mediated endocytosis by hepatic and peripheral tissues and subsequent feedback regulation of endogenous synthesis of cholesterol is a key determinant of serum LDL level. Human mutation analysis revealed that autosomal recessive hypercholesterolemia (ARH), an LDLR endocytic adaptor, perturbs LDLR function and thus impacts serum cholesterol levels. In our genetic analysis of mutant mice, we found that deletion of another LDLR endocytic adaptor, Disabled-2 (Dab2), only slightly affected serum cholesterol levels. However, elimination of both arh and dab2 genes in mice resulted in profound hypercholesterolemia similar to that resulting from ldlr homozygous deletion. In the liver, Dab2 is expressed in sinusoid endothelial cells but not in hepatocytes. When deleting both Dab2 and Arh, HMG-CoA reductase level increased to the level similar to that of ldlr knockout. Thus, in the absence of Arh, Dab2 in liver endothelial cells regulates cholesterol synthesis in hepatocytes. We conclude that the combination of Arh and Dab2 is responsible for the majority of adaptor function in LDLR endocytosis and LDLR-mediated cholesterol homeostasis.
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