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Published on: February 14, 2021
Interference with peroxisome proliferator-activated receptor-γ in vascular smooth muscle causes baroreflex impairment
Giulianna R Borges1, Donald A Morgan1, Pimonrat Ketsawatsomkron1
1From the Department of Pharmacology (G.R.B., D.A.M., P.K., A.D.M., D.P.M., K.R., C.D.S.), Department of Anatomy and Cell Biology (A.P.T., M.D.C.), and Center on the Functional Genomics of Hypertension (K.R., C.D.S.), Roy J. and Lucille A. Carver College of Medicine, University of Iowa, Iowa City.
Abstract:
S-P467L mice expressing dominant negative peroxisome proliferator-activated receptor-γ selectively in vascular smooth muscle exhibit impaired vasodilation, augmented vasoconstriction, hypertension, and tachycardia. We hypothesized that tachycardia in S-P467L mice is a result of baroreflex dysfunction. S-P467L mice displayed increased sympathetic traffic to the heart and decreased baroreflex gain and effectiveness. Carotid arteries exhibited inward remodeling but no changes in distensibility or stress/strain. Aortic depressor nerve activity in response to increased arterial pressure was blunted in S-P467L mice. However, the arterial pressure and heart rate responses to aortic depressor nerve stimulation were unaltered in S-P467L mice, suggesting that the central and efferent limbs of the baroreflex arc remain intact. There was no transgene expression in nodose ganglion and no change in expression of the acid-sensing ion channel-2 or -3 in nodose ganglion. There was a trend toward decreased expression of transient receptor potential vanilloid-1 receptor mRNA in nodose ganglion, but no difference in the immunochemical staining of transient receptor potential vanilloid-1 receptor in the termination area of the left aortic depressor nerve in S-P467L mice. Although there was no difference in the maximal calcium response to capsaicin in cultured nodose neurons from S-P467L mice, there was decreased desensitization of transient receptor potential vanilloid-1 receptor channels. In conclusion, S-P467L mice exhibit baroreflex dysfunction because of a defect in the afferent limb of the baroreflex arc caused by impaired vascular function, altered vascular structure, or compromised neurovascular coupling. These findings implicate vascular smooth muscle peroxisome proliferator activated receptor-γ as a critical determinant of neurovascular signaling.
Insights
Mice with impaired vascular smooth muscle peroxisome proliferator-activated receptor-γ (PPAR-γ) show baroreflex dysfunction, leading to hypertension and tachycardia. This dysfunction stems from issues in the baroreflex
Area of Science:
- Cardiovascular Physiology
- Neuroendocrinology
- Vascular Biology
Background:
- Peroxisome proliferator-activated receptor-γ (PPAR-γ) plays a role in vascular function.
- Dysfunction in PPAR-γ signaling in vascular smooth muscle may impact cardiovascular regulation.
- Baroreflex dysfunction is linked to hypertension and tachycardia.
Purpose of the Study:
- To investigate the role of vascular smooth muscle PPAR-γ in baroreflex control.
- To determine if impaired PPAR-γ signaling in vascular smooth muscle causes baroreflex dysfunction in S-P467L mice.
- To identify the specific components of the baroreflex arc affected by this genetic modification.
Main Methods:
- Utilized S-P467L mice with dominant-negative PPAR-γ in vascular smooth muscle.
- Assessed baroreflex gain and effectiveness through sympathetic traffic and nerve stimulation.
- Examined carotid artery structure and distensibility.
- Investigated nodose ganglion and aortic depressor nerve function, including ion channel expression and neuronal responses.
Main Results:
- S-P467L mice exhibited hypertension, tachycardia, impaired vasodilation, and augmented vasoconstriction.
- Baroreflex gain and effectiveness were reduced, with increased sympathetic cardiac drive.
- The afferent limb of the baroreflex arc was identified as the site of dysfunction, potentially due to vascular changes or neurovascular coupling defects.
Conclusions:
- Vascular smooth muscle PPAR-γ is critical for maintaining baroreflex function.
- Impaired PPAR-γ signaling in vascular smooth muscle leads to baroreflex dysfunction, hypertension, and tachycardia.
- These findings highlight the link between vascular health and autonomic cardiovascular control.
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