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Dietary salt intake regulates WNK3-SPAK-NKCC1 phosphorylation cascade in mouse aorta through angiotensin II
Moko Zeniya1, Eisei Sohara, Satomi Kita
1Department of Nephrology, Graduate School of Medical and Dental Sciences, Tokyo Medical and Dental University, 1-5-45 Yushima, Bunkyo, Tokyo 113-8519, Japan. esohara.kid@tmd.ac.jp.
Abstract:
Na-K-Cl cotransporter isoform 1 (NKCC1) is involved in the regulation of vascular smooth muscle cell contraction. Recently, the with-no-lysine kinase (WNK)-STE20/SPS1-related proline/alanine-rich kinase (SPAK)-NKCC1 phosphorylation cascade in vascular smooth muscle cells was found to be important in the regulation of vascular tone. In this study, we investigated whether the WNK-SPAK-NKCC1 cascade in mouse aortic tissue is regulated by dietary salt intake and the mechanisms responsible. Phosphorylation of SPAK and NKCC1 was significantly reduced in the aorta in high-salt-fed mice and was increased in the aorta in low-salt-fed mice, indicating that the WNK-SPAK-NKCC1 phosphorylation cascade in the aorta was indeed regulated by dietary salt intake. Acute and chronic angiotensin II infusion increased phosphorylation of SPAK and NKCC1 in the mouse aorta. In addition, valsartan, an antagonist of angiotensin II type 1 receptor, inhibited low-salt diet-induced phosphorylation of SPAK and NKCC1, demonstrating that angiotensin II activates the WNK-SPAK-NKCC1 phosphorylation cascade through the angiotensin II type 1 receptor. However, a low-salt diet and angiotensin II together did not increase phosphorylation of SPAK and NKCC1 in the aorta in WNK3 knockout mice, indicating that activation of the WNK-SPAK-NKCC1 phosphorylation cascade induced by a low-salt diet and angiotensin II is dependent on WNK3. Indeed, angiotensin II-induced increases in blood pressure were diminished in WNK3 knockout mice. In addition, decreased response to angiotensin II in the mesenteric arteries was observed in WNK3 knockout mice. Our data also clarified a novel mechanism for regulation of vascular tonus by angiotensin II. Inhibition of this cascade could, therefore, be a novel therapeutic target in hypertension.
Insights
Dietary salt intake and angiotensin II regulate vascular tone via the WNK-SPAK-NKCC1 pathway. This cascade, dependent on WNK3, offers a potential therapeutic target for hypertension.
Area of Science:
- Cardiovascular Physiology
- Molecular Biology
- Renal Physiology
Background:
- The Na-K-Cl cotransporter isoform 1 (NKCC1) regulates vascular smooth muscle contraction.
- The WNK-SPAK-NKCC1 signaling cascade is crucial for vascular tone regulation.
Purpose of the Study:
- To investigate if dietary salt intake regulates the WNK-SPAK-NKCC1 cascade in mouse aorta.
- To elucidate the mechanisms underlying this regulation, focusing on angiotensin II and WNK3.
Main Methods:
- Analysis of SPAK and NKCC1 phosphorylation in mouse aortic tissue under varying salt diets.
- Investigation of angiotensin II infusion effects and blockade with valsartan.
- Utilizing WNK3 knockout mice to assess pathway dependency.
Main Results:
- High-salt diet reduced, while low-salt diet increased, WNK-SPAK-NKCC1 phosphorylation in aorta.
- Angiotensin II infusion increased phosphorylation, inhibited by valsartan, indicating AT1 receptor mediation.
- WNK3 knockout mice showed abolished low-salt/angiotensin II-induced phosphorylation and diminished blood pressure response.
Conclusions:
- Dietary salt intake and angiotensin II modulate the WNK-SPAK-NKCC1 cascade in the aorta.
- Angiotensin II activates this pathway via the AT1 receptor, dependent on WNK3.
- The WNK-SPAK-NKCC1 cascade represents a novel therapeutic target for hypertension.
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