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Updated: Jun 15, 2025

Supramaximal Intensity Hypoxic Exercise and Vascular Function Assessment in Mice
Published on: March 15, 2019
Effect of aortic smooth muscle BK channels on mediating chronic intermittent hypoxia-induced vascular dysfunction
Ping Zhang1, Pengtao Zou2, Xiao Huang2
1Department of Neurology, Jiangxi Provincial People's Hospital, The First Affiliated Hospital of Nanchang Medical College, Nanchang, Jiangxi 330006, China.
Insights
Chronic intermittent hypoxia (CIH) impairs vascular function by decreasing aortic smooth muscle calcium-activated potassium (BK) channel activity. Activating BK channels can restore vascular health and mitigate CIH-induced damage.
Area of Science:
- Cardiovascular Physiology
- Vascular Biology
- Cellular Signaling
Background:
- Chronic intermittent hypoxia (CIH) is linked to cardiovascular, cerebrovascular, and arterial diseases.
- The precise mechanisms of CIH-induced vascular dysfunction are not fully understood.
- Aortic smooth muscle calcium-activated potassium (BK) channels are implicated in vascular tone regulation.
Purpose of the Study:
- To investigate the role of aortic smooth muscle BK channels in CIH-induced vascular dysfunction.
- To determine the effects of BK channel modulation on vascular parameters and molecular markers in CIH models.
Main Methods:
- Established CIH models in rats and rat aortic smooth muscle cells (RASMCs).
- Measured hemodynamic parameters, vascular tone, and serum NO/ET-1 levels.
- Assessed aortic tissue and RASMC levels of ET-1, NO, eNOS, p-eNOS, oxidative stress markers (ROS, MDA), inflammatory factors (IL-6, TNF-α), and intracellular Ca2+ concentration.
- Evaluated BK channel activity and the impact of BK channel activation and inhibition (Iberiotoxin).
Main Results:
- CIH elevated blood pressure, induced endothelial dysfunction, and decreased BK channel activity.
- BK channel activation normalized eNOS, p-eNOS, and NO levels, while reducing ET-1, ROS, MDA, IL-6, and TNF-α.
- CIH increased intracellular Ca2+ in RASMCs, an effect reversed by BK channel activation.
- BK channel inhibition worsened CIH-induced vascular damage.
Conclusions:
- Reduced BK channel activity contributes significantly to CIH-induced vascular dysfunction.
- Activating BK channels offers a potential therapeutic strategy to counteract CIH-related vascular impairments.
- BK channel modulation impacts vascular tone, inflammation, and oxidative stress in the context of CIH.
Abstract:
Chronic intermittent hypoxia (CIH) can lead to vascular dysfunction and increase the risk of cardiovascular diseases, cerebrovascular diseases, and arterial diseases. Nevertheless, mechanisms underlying CIH-induced vascular dysfunction remain unclear. Herein, this study analyzed the role of aortic smooth muscle calciumactivated potassium (BK) channels in CIH-induced vascular dysfunction. CIH models were established in rats and rat aortic smooth muscle cells (RASMCs). Hemodynamic parameters such as mean blood pressure (MBP), diastolic blood pressure (DBP), and systolic blood pressure (SBP) were measured in rats, along with an assessment of vascular tone. NO and ET-1 levels were detected in rat serum, and the levels of ET-1, NO, eNOS, p-eNOS, oxidative stress markers (ROS and MDA), and inflammatory factors (IL-6 and TNF-α) were tested in aortic tissues. The Ca2+ concentration in RASMCs was investigated. The activity of BK channels (BKα and BKβ) was evaluated in aortic tissues and RASMCs. SBP, DBP, and MBP were elevated in CIH-treated rats, along with endothelial dysfunction, cellular edema and partial detachment of endothelial cells. BK channel activity was decreased in CIH-treated rats and RASMCs. BK channel activation increased eNOS, p-eNOS, and NO levels while lowering ET-1, ROS, MDA, IL-6, and TNF-α levels in CIH-treated rats. Ca2+ concentration increased in RASMCs following CIH modeling, which was reversed by BK channel activation. BK channel inhibitor (Iberiotoxin) exacerbated CIH-induced vascular disorders and endothelial dysfunction. BK channel activation promoted vasorelaxation while suppressing vascular endothelial dysfunction, inflammation, and oxidative stress, thereby indirectly improving CIH-induced vascular dysfunction.
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