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Published on: October 20, 2023
Saxagliptin Prevents Increased Coronary Vascular Stiffness in Aortic-Banded Mini Swine
Bradley S Fleenor1, An Ouyang2, T Dylan Olver3
1From the Human Performance Laboratory, School of Kinesiology, Ball State University, Muncie, IN (B.S.F.) bsfleenor@bsu.edu.
Insights
Saxagliptin, a DPP-4 inhibitor, prevented coronary artery stiffness in a heart failure model. This suggests DPP-4 inhibition may be a therapeutic target for preventing vascular stiffening in heart failure with preserved ejection fraction.
Area of Science:
- Cardiovascular Research
- Pharmacology
- Vascular Biology
Background:
- Peripheral conduit artery stiffness is observed in heart failure with preserved ejection fraction (HFpEF).
- The impact of HFpEF on coronary vasculature stiffness remains unclear.
- Coronary inflammation and oxidative stress may contribute to HFpEF pathogenesis.
Purpose of the Study:
- To investigate the effect of saxagliptin, a dipeptidyl-peptidase 4 (DPP-4) inhibitor, on coronary artery stiffness.
- To test the hypothesis that saxagliptin prevents coronary stiffness by inhibiting perivascular adipose tissue inflammation in a swine model of HFpEF.
Main Methods:
- Aortic banding was performed on Yucatan mini swine to create a model of HFpEF.
- Animals were divided into control, untreated HF, and saxagliptin-treated HF groups.
- Ex vivo mechanical testing of coronary arteries and measurement of inflammatory markers (advanced glycation end products, NF-κB, nitrotyrosine) were conducted.
Main Results:
- Aortic-banded HF swine exhibited increased coronary elastic modulus, advanced glycation end products, NF-κB, and nitrotyrosine levels compared to controls.
- Saxagliptin treatment prevented these increases in coronary stiffness and associated molecular changes.
- Perivascular adipose tissue from HF swine, but not saxagliptin-treated HF swine, showed elevated advanced glycation end products and NF-κB.
Conclusions:
- Increased coronary conduit vascular stiffness in a swine model relevant to HFpEF was prevented by saxagliptin.
- Saxagliptin treatment was associated with decreased advanced glycation end products, NF-κB, and nitrotyrosine levels.
- These findings suggest DPP-4 inhibition may offer a therapeutic strategy for mitigating coronary vascular stiffening in HFpEF.
Abstract:
Increased peripheral conduit artery stiffness has been shown in patients with heart failure (HF) with preserved ejection fraction. However, it is unknown whether this phenomenon extends to the coronary vasculature. HF with preserved ejection fraction may be driven, in part, by coronary inflammation, and inhibition of the enzyme DPP-4 (dipeptidyl-peptidase 4) reduces inflammation and oxidative stress. The purpose of this study was to determine the effect of saxagliptin-a DPP-4 inhibitor-on coronary stiffness in aortic-banded mini swine. We hypothesized saxagliptin would prevent increased coronary artery stiffness in a translational swine model with cardiac features of HF with preserved ejection fraction by inhibiting perivascular adipose tissue inflammation. Yucatan mini swine were divided into 3 groups: control, aortic-banded untreated HF, and aortic-banded saxagliptin-treated HF. Ex vivo mechanical testing was performed on the left circumflex and right coronary arteries, and advanced glycation end product, NF-κB (nuclear factor-κB), and nitrotyrosine levels were measured. An increase in the coronary elastic modulus of HF animals was associated with increased vascular advanced glycation end products, NF-κB, and nitrotyrosine levels compared with control and prevented by saxagliptin treatment. Aortas from healthy mice were treated with media from swine perivascular adipose tissue culture to assess its role on vascular stiffening. Conditioned media from HF and saxagliptin-treated HF animals increased mouse aortic stiffness; however, only perivascular adipose tissue from the HF group showed increased advanced glycation end products and NF-κB levels. In conclusion, our data show increased coronary conduit vascular stiffness was prevented by saxagliptin and associated with decreased advanced glycation end products, NF-κB, and nitrotyrosine levels in a swine model with potential relevance to HF with preserved ejection fraction.
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