Related Experiment Video
Updated: Jul 29, 2025

Hyperinsulinemic-euglycemic Clamps in Conscious, Unrestrained Mice
Published on: November 16, 2011
Different sensitivity to diet-induced hyperinsulinemia and hyperglycemia between mice with global or bone
Patrick R Wolfkiel1, April M Haller2, Jillian Kirby2
1Molecular Genetics, Biochemistry, and Microbiology Graduate Program, University of Cincinnati College of Medicine, Cincinnati, Ohio, United States.
Abstract:
This study explored the role of apoE receptor-2 (apoER2), a unique member of the LDL receptor family proteins with a restricted tissue expression profile, in modulating diet-induced obesity and diabetes. Unlike wild-type mice and humans in which chronic feeding of a high-fat Western-type diet leads to obesity and the prediabetic state of hyperinsulinemia before hyperglycemia onset, the Lrp8 mice with global apoER2 deficiency displayed lower body weight and adiposity, slower development of hyperinsulinemia, but the accelerated onset of hyperglycemia. Despite their lower adiposity, adipose tissues in Western diet-fed Lrp8-/- mice were more inflamed compared with wild-type mice. Additional experiments revealed that the hyperglycemia observed in Western diet-fed Lrp8-/- mice was due to impaired glucose-induced insulin secretion, ultimately leading to hyperglycemia, adipocyte dysfunction, and inflammation upon chronic feeding of the Western diet. Interestingly, bone marrow-specific apoER2-deficient mice were not defective in insulin secretion, exhibiting increased adiposity and hyperinsulinemia compared with wild-type mice. Analysis of bone marrow-derived macrophages revealed that apoER2 deficiency impeded inflammation resolution with lower secretion of IFN-β and IL-10 in response to LPS stimulation of IL-4 primed cells. The apoER2-deficient macrophages also showed an increased level of disabled-2 (Dab2) as well as increased cell surface TLR4, suggesting that apoER2 participates in Dab2 regulation of TLR4 signaling. Taken together, these results showed that apoER2 deficiency in macrophages sustains diet-induced tissue inflammation and accelerates obesity and diabetes onset while apoER2 deficiency in other cell types contributes to hyperglycemia and inflammation via defective insulin secretion.
Insights
ApoE receptor-2 (apoER2) deficiency accelerates diet-induced obesity and diabetes. Macrophage apoER2 loss impairs inflammation resolution, while its absence in other cells causes hyperglycemia via defective insulin secretion.
Area of Science:
- Metabolic disease research
- Immunology
- Molecular biology
Background:
- Diet-induced obesity and diabetes are significant health concerns.
- Apolipoprotein E receptor 2 (apoER2) is a member of the LDL receptor family with restricted tissue expression.
- The role of apoER2 in metabolic regulation, particularly in response to high-fat diets, is not fully understood.
Purpose of the Study:
- To investigate the role of apoER2 in modulating diet-induced obesity and diabetes.
- To elucidate the mechanisms by which apoER2 deficiency impacts metabolic homeostasis and inflammation.
Main Methods:
- Utilized global apoER2-deficient (Lrp8-/-) mice and bone marrow-specific apoER2-deficient mice.
- Administered a high-fat Western-type diet to study diet-induced metabolic changes.
- Analyzed body weight, adiposity, glucose tolerance, insulin secretion, and adipose tissue inflammation.
- Investigated macrophage function, including cytokine secretion (IFN-β, IL-10) and Toll-like receptor 4 (TLR4) signaling.
Main Results:
- Global apoER2 deficiency led to lower body weight and adiposity but accelerated hyperglycemia onset.
- Western diet-fed Lrp8-/- mice exhibited increased adipose tissue inflammation and impaired glucose-induced insulin secretion.
- Bone marrow-specific apoER2 deficiency resulted in increased adiposity and hyperinsulinemia.
- ApoER2-deficient macrophages showed impaired inflammation resolution and altered TLR4 signaling via disabled-2 (Dab2).
Conclusions:
- ApoER2 plays a critical role in regulating diet-induced obesity and diabetes.
- Macrophage apoER2 deficiency sustains tissue inflammation, accelerating metabolic disease onset.
- ApoER2 deficiency in other cell types contributes to hyperglycemia through impaired insulin secretion.
- Targeting apoER2 may offer therapeutic strategies for metabolic disorders.

