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Published on: September 22, 2011
Disruption of vascular Ca2+-activated chloride currents lowers blood pressure
Insights
Calcium-activated chloride currents (CaCCs) in blood vessels are linked to high blood pressure. Blocking TMEM16A reduces vascular resistance and lowers blood pressure, offering a potential hypertension treatment.
Area of Science:
- Physiology
- Cardiovascular Research
- Molecular Biology
Background:
- High blood pressure is a major global health risk, driven by increased peripheral vascular resistance.
- Arteriole tone, influenced by calcium-activated chloride currents (CaCCs) in vascular smooth muscle cells (VSMCs), is a key factor in vascular resistance.
Purpose of the Study:
- To investigate the role of CaCCs and the TMEM16A channel in vascular smooth muscle cells and other vascular cells.
- To determine the contribution of TMEM16A to blood pressure regulation and vascular contractility.
Main Methods:
- Analysis of CaCC distribution in various blood vessels (aorta, carotid, mesenteric, retinal, brain, skeletal muscle).
- Gene targeting to disrupt TMEM16A in VSMCs, intermediate cells, and pericytes.
- Assessment of blood pressure and vascular responses to vasoconstrictors in TMEM16A-deficient mice.
Main Results:
- Substantial CaCCs were found in VSMCs of large arteries and in intermediate cells/pericytes of small vessels; CaCCs were minimal in medium-sized arteries.
- TMEM16A disruption abolished CaCCs and reduced systemic blood pressure in mice.
- Loss of TMEM16A attenuated vasoconstrictor responses in the aorta, retinal arterioles, and hind limb vasculature, but not in mesenteric arteries.
Conclusions:
- TMEM16A plays a significant role in regulating vascular tone and blood pressure across different vessel types.
- TMEM16A is crucial for peripheral blood flow regulation and represents a potential therapeutic target for hypertension.
Abstract:
High blood pressure is the leading risk factor for death worldwide. One of the hallmarks is a rise of peripheral vascular resistance, which largely depends on arteriole tone. Ca2+-activated chloride currents (CaCCs) in vascular smooth muscle cells (VSMCs) are candidates for increasing vascular contractility. We analyzed the vascular tree and identified substantial CaCCs in VSMCs of the aorta and carotid arteries. CaCCs were small or absent in VSMCs of medium-sized vessels such as mesenteric arteries and larger retinal arterioles. In small vessels of the retina, brain, and skeletal muscle, where contractile intermediate cells or pericytes gradually replace VSMCs, CaCCs were particularly large. Targeted disruption of the calcium-activated chloride channel TMEM16A, also known as ANO1, in VSMCs, intermediate cells, and pericytes eliminated CaCCs in all vessels studied. Mice lacking vascular TMEM16A had lower systemic blood pressure and a decreased hypertensive response following vasoconstrictor treatment. There was no difference in contractility of medium-sized mesenteric arteries; however, responsiveness of the aorta and small retinal arterioles to the vasoconstriction-inducing drug U46619 was reduced. TMEM16A also was required for peripheral blood vessel contractility, as the response to U46619 was attenuated in isolated perfused hind limbs from mutant mice. Out data suggest that TMEM16A plays a general role in arteriolar and capillary blood flow and is a promising target for the treatment of hypertension.
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