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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.
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.
Objective:
It remains incompletely understood how homocysteine impairs endothelial function. Whether mechanisms such as calcium-activated potassium (KCa) channels are involved is uncertain and the significance of endoplasmic reticulum (ER) stress in KCa channel-dependent endothelial function in hyperhomocysteinemia remains unexplored. We investigated the effect of homocysteine on endothelial KCa channels in coronary vasculature with further exploration of the role of ER stress.
Methods:
Vasorelaxation mediated by intermediate- and small-conductance KCa (IKCa and SKCa) channels was studied in porcine coronary arteries in a myograph. IKCa and SKCa channel currents were recorded by whole-cell patch-clamp in coronary endothelial cells. Protein levels of endothelial IKCa and SKCa channels were determined for both whole-cell and surface expressions.
Results:
Homocysteine impaired bradykinin-induced IKCa and SKCa-dependent EDHF-type relaxation and attenuated the vasorelaxant response to the channel activator. IKCa and SKCa currents were suppressed by homocysteine. Inhibition of ER stress during homocysteine exposure enhanced IKCa and SKCa currents, associated with improved EDHF-type response and channel activator-induced relaxation. Homocysteine did not alter whole-cell protein levels of IKCa and SKCa whereas lowered surface expressions of these channels, which were restored by ER stress inhibition.
Conclusions:
Homocysteine induces endothelial dysfunction through a mechanism involving ER stress-mediated suppression of IKCa and SKCa channels. Inhibition of cell surface expression of these channels by ER stress is, at least partially, responsible for the suppressive effect of homocysteine on the channel function. This study provides new mechanistic insights into homocysteine-induced endothelial dysfunction and advances our knowledge of the significance of ER stress in vascular disorders.
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