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.

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.

Related Concept Videos

Disorders of the Autonomic Nervous System01:18

Disorders of the Autonomic Nervous System

The autonomic nervous system (ANS) is an intricate network of nerves that controls functions such as the regulation of heart rate, digestion, and blood pressure regulation. When this system malfunctions, it can lead to various disorders that affect multiple bodily functions. One common feature of many autonomic disorders is the involvement of smooth blood vessels, which play a crucial role in regulating blood flow throughout the body.
Raynaud's disease, also known as Raynaud's...
1.9K
Autoregulation of Blood Flow01:17

Autoregulation of Blood Flow

Autoregulation mechanisms are characterized by their inherent capacity for self-regulation without necessitating specific nervous stimulation or endocrine control. These mechanisms facilitate the adjustment of blood flow and, therefore, perfusion specific to each tissue region. This self-regulation encompasses chemical signals and myogenic controls.
Chemical Signaling in Autoregulation
Chemical signaling operates at the precapillary sphincter level, inciting either contraction or relaxation....
9.9K
Peripheral Artery Disease I: Introduction01:30

Peripheral Artery Disease I: Introduction

Peripheral artery disease (PAD) predominantly results from atherosclerosis, which involves the accumulation of fatty deposits, or plaques, within the walls of arteries. This causes them to narrow and harden, significantly reducing blood flow. PAD predominantly affects the legs, particularly the arteries supplying the thighs and calves. In rare cases, it may involve other arteries, including those in the arms.Etiology of PAD:The principal cause of PAD is atherosclerosis, which results from fatty...
658
Neural Regulation of Blood Pressure01:18

Neural Regulation of Blood Pressure

The neural regulation of blood pressure involves intricate interactions between the autonomic nervous system (ANS) and cardiovascular system, ensuring adequate perfusion of tissues. This regulation primarily occurs through baroreceptor and chemoreceptor reflexes, involving both short-term and long-term mechanisms.
Baroreceptor Reflex
Baroreceptors, located in the carotid sinuses and aortic arch, detect changes in blood pressure. When blood pressure rises, these stretch-sensitive receptors...
8.9K
Regulation of the Cardiovascular System01:27

Regulation of the Cardiovascular System

The regulation of the cardiovascular system allows the body to adapt to various demands and maintain homeostasis.
The regulation of the cardiovascular system involves the autonomic nervous system (ANS), baroreceptors, and chemoreceptors, ensuring that heart rate and blood pressure are appropriately modulated in response to varying physiological demands.
The ANS comprises two main divisions: the sympathetic and parasympathetic nervous systems. The sympathetic nervous system enhances...
5.4K
GPCR Desensitization01:12

GPCR Desensitization

G protein-coupled receptor (GPCR) signaling plays a crucial role in cell functioning. GPCR desensitization is an equally essential process. It allows cells to respond to changing environments and regain sensitivity to new stimuli while preventing unnecessary stimulation when no longer needed. Prolonged exposure to stimuli leads to GPCR desensitization. It involves blocking the receptors from binding and activating additional G proteins. This inhibits activation of downstream effectors, thereby...
6.1K