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Ager Deletion Enhances Ischemic Muscle Inflammation, Angiogenesis, and Blood Flow Recovery in Diabetic Mice
Raquel López-Díez1, Xiaoping Shen1, Gurdip Daffu1
1From the Diabetes Research Program, Division of Endocrinology, Diabetes and Metabolism, Department of Medicine (R.L.D., X.S., G.D., M.K., F.S., R.R., Y.X., Q.L., X.X., Y.S.Z., A.M.S., S.F.Y.), Department of Population Health (J.H., H.L.), and Department of Environmental Science (H.L.), New York University School of Medicine, New York.
Objective:
Diabetic subjects are at higher risk of ischemic peripheral vascular disease. We tested the hypothesis that advanced glycation end products (AGEs) and their receptor (RAGE) block angiogenesis and blood flow recovery after hindlimb ischemia induced by femoral artery ligation through modulation of immune/inflammatory mechanisms.
Approach And Results:
Wild-type mice rendered diabetic with streptozotocin and subjected to unilateral femoral artery ligation displayed increased accumulation and expression of AGEs and RAGE in ischemic muscle. In diabetic wild-type mice, femoral artery ligation attenuated angiogenesis and impaired blood flow recovery, in parallel with reduced macrophage content in ischemic muscle and suppression of early inflammatory gene expression, including Ccl2 (chemokine [C-C motif] ligand-2) and Egr1 (early growth response gene-1) versus nondiabetic mice. Deletion of Ager (gene encoding RAGE) or transgenic expression of Glo1 (reduces AGEs) restored adaptive inflammation, angiogenesis, and blood flow recovery in diabetic mice. In diabetes mellitus, deletion of Ager increased circulating Ly6Chi monocytes and augmented macrophage infiltration into ischemic muscle tissue after femoral artery ligation. In vitro, macrophages grown in high glucose display inflammation that is skewed to expression of tissue damage versus tissue repair gene expression. Further, macrophages grown in high versus low glucose demonstrate blunted macrophage-endothelial cell interactions. In both settings, these adverse effects of high glucose were reversed by Ager deletion in macrophages.
Conclusions:
These findings indicate that RAGE attenuates adaptive inflammation in hindlimb ischemia; underscore microenvironment-specific functions for RAGE in inflammation in tissue repair versus damage; and illustrate that AGE/RAGE antagonism may fill a critical gap in diabetic peripheral vascular disease.
Insights
Advanced glycation end products (AGEs) and their receptor (RAGE) impair blood flow recovery in diabetic peripheral vascular disease. Blocking AGE/RAGE signaling restores adaptive inflammation and promotes healing in ischemic tissues.
Area of Science:
- Vascular Biology
- Diabetic Complications
- Inflammation and Immunology
Background:
- Diabetic individuals face increased risk of ischemic peripheral vascular disease.
- Advanced glycation end products (AGEs) and their receptor (RAGE) are implicated in diabetic complications.
Purpose of the Study:
- To investigate the role of AGEs and RAGE in blocking angiogenesis and impairing blood flow recovery after hindlimb ischemia in diabetes.
- To explore the modulation of immune/inflammatory mechanisms by AGEs/RAGE in this context.
Main Methods:
- Utilized streptozotocin-induced diabetic wild-type mice subjected to femoral artery ligation.
- Assessed AGE and RAGE accumulation, inflammatory gene expression (Ccl2, Egr1), macrophage content, and angiogenesis.
- Investigated the effects of RAGE deletion (Ager) or AGE reduction (Glo1) on recovery.
- Conducted in vitro studies with macrophages cultured in high glucose.
Main Results:
- Diabetic mice showed increased AGEs/RAGE, attenuated angiogenesis, and impaired blood flow recovery with reduced macrophages and suppressed early inflammatory genes.
- RAGE deletion or AGE reduction restored adaptive inflammation, angiogenesis, and blood flow recovery in diabetic mice.
- In vitro, high glucose skewed macrophage inflammation towards tissue damage and impaired interactions with endothelial cells, effects reversed by RAGE deletion.
Conclusions:
- RAGE attenuates adaptive inflammation in hindlimb ischemia, highlighting its microenvironment-specific role in tissue repair versus damage.
- AGE/RAGE antagonism presents a potential therapeutic strategy for diabetic peripheral vascular disease.

