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Published on: October 23, 2014
Hypoxia reduces mature hERG channels through calpain up-regulation
Shawn M Lamothe1, WonJu Song1, Jun Guo1
1Department of Biomedical and Molecular Sciences Queen's University, Kingston, Ontario, Canada; and.
Insights
Hypoxia reduces cardiac hERG channel function by increasing calpain, an enzyme that degrades the channel. This mechanism contributes to arrhythmias in conditions like cardiac ischemia and sleep apnea.
Area of Science:
- Cardiology
- Molecular Biology
- Physiology
Background:
- The human ether-a-go-go-related gene (hERG) channel is crucial for cardiac repolarization.
- Impaired hERG function causes long QT syndrome, leading to arrhythmias and sudden death.
- Hypoxia, common in cardiac ischemia and sleep apnea, increases arrhythmia risk.
Purpose of the Study:
- To elucidate the mechanisms linking hypoxia to cardiac arrhythmias.
- To investigate the impact of hypoxia on hERG channel function and expression.
Main Methods:
- Cell biology and electrophysiology techniques were employed.
- HEK cells and neonatal rat cardiomyocytes were cultured under hypoxic conditions.
- Chimeric channels and a specific scorpion toxin (BeKm-1) were used to identify degradation sites.
Main Results:
- Hypoxia reduced hERG current (IKr) and mature channel expression.
- Calpain expression and extracellular activity increased under hypoxia, degrading cell-surface hERG.
- Hypoxia-induced calpain degradation targeted the hERG S5-pore linker, a site also targeted by BeKm-1.
Conclusions:
- Hypoxia impairs hERG channel function via calpain-mediated degradation.
- This mechanism provides insight into hypoxia-associated cardiac arrhythmias.
- Findings may have implications for treating hypoxia-related cardiovascular diseases.
Abstract:
Human ether-a-go-go-related gene (hERG) encodes the pore-forming subunit of the rapidly activating delayed rectifier potassium current (IKr) potassium channel, which is important for cardiac repolarization. Impairment of hERG function is the primary cause of acquired long QT syndrome, which predisposes individuals to cardiac arrhythmias and sudden death. Patients with hypoxia due to conditions such as cardiac ischemia or obstructive sleep apnea display increased incidence of cardiac arrhythmias and sudden death. We sought to understand the mechanisms that underlie hypoxia-associated cardiac arrhythmias. Using cell biology and electrophysiologic techniques, we found that hypoxic culture of hERG-expressing human embryonic kidney (HEK) cells and neonatal rat cardiomyocytes reduced hERG current/IKr and mature ERG channel expression with a concomitant increase in calpain expression. Calpain was actively released into the extracellular milieu and degraded cell-surface hERG. In contrast to hERG, the ether-a-go-go (EAG) channel was not reduced by hypoxic culture. By making chimeric channels between hERG and EAG, we identified that hypoxia-induced calpain degraded hERG by targeting its extracellular S5-pore linker. The scorpion toxin BeKm-1, which is known to selectively bind to the S5-pore linker of hERG, prevented hypoxia-induced hERG reduction. Our data provide novel information about hypoxia-mediated hERG dysfunction and may have biological and clinical implications in hypoxia-associated diseases.-Lamothe, S. M., Song, W., Guo, J., Li, W., Yang, T., Baranchuk, A., Graham, C. H., Zhang, S. Hypoxia reduces mature hERG channels through calpain up-regulation.
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