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Treatment With Small Molecule Inhibitors of Advanced Glycation End-Products Formation and Advanced Glycation
Yankui Li1,2, Xiaoya Zheng1,3, Jia Guo1
1Department of Surgery Stanford University School of Medicine Stanford CA USA.
Abstract:
Background Although diabetes attenuates abdominal aortic aneurysms (AAAs), the mechanisms by which diabetes suppresses AAAs remain incompletely understood. Accumulation of advanced glycation end- (AGEs) reduces extracellular matrix (ECM) degradation in diabetes. Because ECM degradation is critical for AAA pathogenesis, we investigated whether AGEs mediate experimental AAA suppression in diabetes by blocking AGE formation or disrupting AGE-ECM cross-linking using small molecule inhibitors. Methods and Results Male C57BL/6J mice were treated with streptozotocin and intra-aortic elastase infusion to induce diabetes and experimental AAAs, respectively. Aminoguanidine (AGE formation inhibitor, 200 mg/kg), alagebrium (AGE-ECM cross-linking disrupter, 20 mg/kg), or vehicle was administered daily to mice from the last day following streptozotocin injection. AAAs were assessed via serial aortic diameter measurements, histopathology, and in vitro medial elastolysis assays. Treatment with aminoguanidine, not alagebrium, diminished AGEs in diabetic AAAs. Treatment with both inhibitors enhanced aortic enlargement in diabetic mice as compared with vehicle treatment. Neither enhanced AAA enlargement in nondiabetic mice. AAA enhancement in diabetic mice by aminoguanidine or alagebrium treatment promoted elastin degradation, smooth muscle cell depletion, mural macrophage accumulation, and neoangiogenesis without affecting matrix metalloproteinases, C-C motif chemokine ligand 2, or serum glucose concentration. Additionally, treatment with both inhibitors reversed suppression of diabetic aortic medial elastolysis by porcine pancreatic elastase in vitro. Conclusions Inhibiting AGE formation or AGE-ECM cross-linking enhances experimental AAAs in diabetes. These findings support the hypothesis that AGEs attenuate experimental AAAs in diabetes. These findings underscore the potential translational value of enhanced ECM cross-linking as an inhibitory strategy for early AAA disease.
Insights
Diabetes suppresses abdominal aortic aneurysms (AAAs) potentially through advanced glycation end-products (AGEs). Inhibiting AGE formation or cross-linking unexpectedly worsened experimental AAAs in diabetic mice, suggesting AGEs protect against AAA development.
Area of Science:
- Vascular Biology
- Endocrinology
- Biochemistry
Background:
- Diabetes mellitus is known to attenuate abdominal aortic aneurysms (AAAs), but the underlying mechanisms are not fully understood.
- Advanced glycation end-products (AGEs) accumulate in diabetes and reduce extracellular matrix (ECM) degradation, a process crucial for AAA pathogenesis.
Purpose of the Study:
- To investigate whether AGEs mediate the suppression of experimental AAAs in diabetes.
- To determine if inhibiting AGE formation or disrupting AGE-ECM cross-linking affects AAA development in a diabetic mouse model.
Main Methods:
- Male C57BL/6J mice were induced into diabetes using streptozotocin and developed experimental AAAs via intra-aortic elastase infusion.
- Mice received aminoguanidine (AGE formation inhibitor) or alagebrium (AGE-ECM cross-linking disruptor) or vehicle daily.
- AAA progression was assessed by aortic diameter measurements, histopathology, and in vitro medial elastolysis assays.
Main Results:
- Aminoguanidine treatment diminished AGEs in diabetic AAAs, while alagebrium did not.
- Both aminoguanidine and alagebrium treatments enhanced aortic enlargement in diabetic mice compared to vehicle controls.
- These enhancements involved increased elastin degradation, smooth muscle cell depletion, macrophage accumulation, and neoangiogenesis, without altering MMPs or glucose levels.
Conclusions:
- Inhibiting AGE formation or AGE-ECM cross-linking exacerbates experimental AAAs in diabetic mice.
- These findings support the hypothesis that AGEs play a protective role, attenuating AAA development in diabetes.
- Enhanced ECM cross-linking may represent a potential therapeutic strategy for early-stage AAA disease.
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