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.

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