ER stress mediates homocysteine-induced endothelial dysfunction: Modulation of IKCa and SKCa channels

Xiang-Chong Wang1, Wen-Tao Sun1, Cheuk-Man Yu1

  • 1Division of Cardiology, Department of Medicine and Therapeutics, Institute of Vascular Medicine, Li Ka Shing Institute of Health Sciences, Institute of Innovative Medicine, and Shenzhen Research Institute, The Chinese University of Hong Kong, Hong Kong.

Atherosclerosis
|July 24, 2015
PubMed

Insights

High homocysteine levels impair blood vessel function by reducing calcium-activated potassium (KCa) channels, a process involving endoplasmic reticulum (ER) stress. Inhibiting ER stress restores channel function and improves vascular response.

Area of Science:

  • Cardiovascular Physiology
  • Endothelial Biology
  • Molecular Mechanisms of Vascular Disease

Background:

  • Endothelial dysfunction is a key factor in cardiovascular diseases.
  • The role of calcium-activated potassium (KCa) channels and endoplasmic reticulum (ER) stress in homocysteine-induced endothelial dysfunction is not fully understood.

Purpose of the Study:

  • To investigate the impact of homocysteine on endothelial KCa channels in coronary vasculature.
  • To explore the involvement of ER stress in KCa channel-dependent endothelial function during hyperhomocysteinemia.

Main Methods:

  • Studied vasorelaxation mediated by intermediate- and small-conductance KCa (IKCa and SKCa) channels in porcine coronary arteries using myography.
  • Recorded IKCa and SKCa channel currents via whole-cell patch-clamp in coronary endothelial cells.
  • Assessed whole-cell and surface protein expressions of IKCa and SKCa channels.

Main Results:

  • Homocysteine impaired KCa channel-dependent relaxation and attenuated responses to channel activators.
  • Homocysteine suppressed IKCa and SKCa channel currents and reduced their surface expression.
  • Inhibition of ER stress reversed these suppressive effects, improving channel function and vasorelaxation.

Conclusions:

  • Homocysteine induces endothelial dysfunction via ER stress-mediated suppression of IKCa and SKCa channels.
  • ER stress reduces the cell surface expression of these channels, contributing to impaired vascular function.
  • This study elucidates novel mechanisms linking homocysteine, ER stress, and endothelial dysfunction in vascular disorders.
Abstract

Related Concept Videos

Psychoneuroimmunology: Cardiovascular Disease01:27

Psychoneuroimmunology: Cardiovascular Disease

Psychoneuroimmunology (PNI) is a multidisciplinary field that examines how psychological factors, particularly stress, interact with the immune system and impact physical health. Research in PNI has shown that chronic or traumatic stress can disrupt both the hypothalamic-pituitary-adrenal axis and the sympathetic nervous system. These disruptions contribute to serious health conditions, including cardiovascular diseases.
A key area of focus in PNI is the relationship between stress and coronary...
697
Hypertension II: Pathophysiology01:29

Hypertension II: Pathophysiology

Hypertension is a chronic condition in which the blood's force against artery walls is excessively high, posing risks such as heart disease. The condition's underlying mechanisms involve complex interactions among the cardiovascular, kidney, and autonomic nervous systems.Renin-Angiotensin-Aldosterone System (RAAS): This system significantly influences blood pressure regulation. When blood pressure decreases, the kidneys secrete renin. This enzyme transforms angiotensinogen, a plasma protein,...
1.5K
Blood Studies for Cardiovascular System II: CRP, Hcy, and Cardiac Natriuretic Peptide Markers01:19

Blood Studies for Cardiovascular System II: CRP, Hcy, and Cardiac Natriuretic Peptide Markers

Cardiac biomarkers are critical in diagnosing, prognosing, and managing cardiovascular diseases. Routine measurement of specific biomarkers such as B-type natriuretic peptide (BNP), C-reactive protein (CRP), and homocysteine (Hcy) is common practice in clinical settings to evaluate heart function and predict cardiovascular events.
These markers indicate stress or strain on the heart muscle:
Natriuretic Peptides (BNP)
Cardiac myocytes produce these hormones in response to ventricular stretching...
771
Physiological Foundation of Stress01:24

Physiological Foundation of Stress

Stress triggers a coordinated physiological response involving the sympathetic nervous system (SNS) and the hypothalamic-pituitary-adrenal (HPA) axis. This dual activation ensures that the body is prepared for both immediate and prolonged stress management. The process begins with the perception of a stressor. This initial phase activates the SNS, leading to the rapid release of adrenaline (epinephrine) from the adrenal glands.
Role of the Sympathetic Nervous System
Adrenaline triggers the...
1.0K
Stress Concentrations01:24

Stress Concentrations

Stress concentration is when stress intensifies near discontinuities such as holes or abrupt cross-sectional changes in a structural member. This localized stress can often surpass the average stress within the member. The stress distribution in flat bars, either with a circular hole or varying widths connected by fillets, can be determined experimentally using a photoelastic method. The results are based on ratios of geometric parameters like the ratio of the hole's radius to the smaller...
833
Stress Concentrations01:13

Stress Concentrations

The concept of stress concentration is crucial for understanding how materials respond under bending stresses, particularly when there are irregularities or discontinuities in the material's geometry. Normally, stress in a symmetric member subjected to pure bending is assumed to be uniformly distributed across the entire cross-section. However, this assumption does not hold when there are variations in the cross-sectional geometry or the presence of notches and holes.
The stress...
779