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Updated: Jun 24, 2025

Quantification of Atherosclerosis in Mice
Published on: June 12, 2019
Imbalance of APOB Lipoproteins and Large HDL in Type 1 Diabetes Drives Atherosclerosis
Vishal Kothari1, Tse W W Ho2,3, Ainara G Cabodevilla4
1Department of Medicine, Division of Metabolism, Endocrinology and Nutrition, UW Medicine Diabetes Institute (V.K., Y.H., F.K., M.S.-A., J.E.K., B.S., J.W.H., T.V., K.E.B.).
Insights
Type 1 diabetes (T1D) increases cardiovascular disease risk despite normal HDL. Larger HDL particles protect against atherosclerosis by preventing endothelial transcytosis, not just cholesterol efflux. This balance is key in T1D.
Area of Science:
- Cardiovascular Research
- Metabolic Disorders
- Lipoprotein Metabolism
Background:
- Individuals with type 1 diabetes (T1D) face increased atherosclerotic cardiovascular disease (CVD) risk despite normal or high HDL-cholesterol.
- Human HDL is a heterogeneous mixture of particles, with varying cholesterol content.
- The role of specific HDL subspecies in T1D-associated atherosclerosis remains unclear.
Purpose of the Study:
- To investigate if specific HDL subspecies contribute to the increased atherosclerosis in type 1 diabetes.
- To develop and utilize mouse models of T1D with human-like HDL subspecies.
- To analyze the association between HDL subspecies and incident CVD in a human T1D cohort.
Main Methods:
- Generated LDL receptor-deficient mouse models of T1D expressing human APOA1 and CETP.
- Measured HDL particle concentrations, sizes, and associated proteins using advanced analytical techniques.
- Assessed endothelial transcytosis and LDL accumulation in mouse models.
- Analyzed HDL subspecies and CVD risk in a cohort of individuals with T1D.
Main Results:
- Diabetic mice expressing CETP lost atheroprotection, showing increased lesion necrotic cores and APOB accumulation.
- Large HDL particles were more effective than small HDL in preventing endothelial transcytosis of LDL.
- In humans with T1D, higher concentrations of larger HDL particles relative to APOB100 predicted lower incident CVD, independent of HDL-cholesterol levels.
Conclusions:
- The balance between APOB lipoproteins and larger HDL subspecies is crucial for atherosclerosis progression in T1D.
- Larger HDL subspecies exert atheroprotective effects on endothelial cells.
- These findings highlight a novel mechanism for HDL's role in T1D cardiovascular risk.
Background:
Individuals with type 1 diabetes (T1D) generally have normal or even higher HDL (high-density lipoprotein)-cholesterol levels than people without diabetes yet are at increased risk for atherosclerotic cardiovascular disease (CVD). Human HDL is a complex mixture of particles that can vary in cholesterol content by >2-fold. To investigate if specific HDL subspecies contribute to the increased atherosclerosis associated with T1D, we created mouse models of T1D that exhibit human-like HDL subspecies. We also measured HDL subspecies and their association with incident CVD in a cohort of people with T1D.
Methods:
We generated LDL receptor-deficient (Ldlr-/-) mouse models of T1D expressing human APOA1 (apolipoprotein A1). Ldlr-/-APOA1Tg mice exhibited the main human HDL subspecies. We also generated Ldlr-/-APOA1Tg T1D mice expressing CETP (cholesteryl ester transfer protein), which had lower concentrations of large HDL subspecies versus mice not expressing CETP. HDL particle concentrations and sizes and proteins involved in lipoprotein metabolism were measured by calibrated differential ion mobility analysis and targeted mass spectrometry in the mouse models of T1D and in a cohort of individuals with T1D. Endothelial transcytosis was analyzed by total internal reflection fluorescence microscopy.
Results:
Diabetic Ldlr-/-APOA1Tg mice were severely hyperglycemic and hyperlipidemic and had markedly elevated plasma APOB levels versus nondiabetic littermates but were protected from the proatherogenic effects of diabetes. Diabetic Ldlr-/-APOA1Tg mice expressing CETP lost the atheroprotective effect and had increased lesion necrotic core areas and APOB accumulation, despite having lower plasma APOB levels. The detrimental effects of low concentrations of larger HDL particles in diabetic mice expressing CETP were not explained by reduced cholesterol efflux. Instead, large HDL was more effective than small HDL in preventing endothelial transcytosis of LDL mediated by scavenger receptor class B type 1. Finally, in humans with T1D, increased concentrations of larger HDL particles relative to APOB100 negatively predicted incident CVD independently of HDL-cholesterol levels.
Conclusions:
Our results suggest that the balance between APOB lipoproteins and the larger HDL subspecies contributes to atherosclerosis progression and incident CVD in the setting of T1D and that larger HDLs exert atheroprotective effects on endothelial cells rather than by promoting macrophage cholesterol efflux.
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