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P2Y2 and Gq/G11 control blood pressure by mediating endothelial mechanotransduction
ShengPeng Wang, András Iring, Boris Strilic, Julián Albarrán Juárez, Harmandeep Kaur, Kerstin Troidl, Sarah Tonack, Joachim C. Burbiel, Christa E. Müller, Ingrid Fleming, Jon O. Lundberg, Nina Wettschureck, Stefan Offermanns
ShengPeng Wang, András Iring, Boris Strilic, Julián Albarrán Juárez, Harmandeep Kaur, Kerstin Troidl, Sarah Tonack, Joachim C. Burbiel, Christa E. Müller, Ingrid Fleming, Jon O. Lundberg, Nina Wettschureck, Stefan Offermanns
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Research Article Vascular biology

P2Y2 and Gq/G11 control blood pressure by mediating endothelial mechanotransduction

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Abstract

Elevated blood pressure is a key risk factor for developing cardiovascular diseases. Blood pressure is largely determined by vasodilatory mediators, such as nitric oxide (NO), that are released from the endothelium in response to fluid shear stress exerted by the flowing blood. Previous work has identified several mechanotransduction signaling processes that are involved in fluid shear stress–induced endothelial effects, but how fluid shear stress initiates the response is poorly understood. Here, we evaluated human and bovine endothelial cells and found that the purinergic receptor P2Y2 and the G proteins Gq/G11 mediate fluid shear stress–induced endothelial responses, including [Ca2+]i transients, activation of the endothelial NO synthase (eNOS), phosphorylation of PECAM-1 and VEGFR-2, as well as activation of SRC and AKT. In response to fluid shear stress, endothelial cells released ATP, which activates the purinergic P2Y2 receptor. Mice with induced endothelium-specific P2Y2 or Gq/G11 deficiency lacked flow-induced vasodilation and developed hypertension that was accompanied by reduced eNOS activation. Together, our data identify P2Y2 and Gq/G11 as a critical endothelial mechanosignaling pathway that is upstream of previously described mechanotransduction processes and demonstrate that P2Y2 and Gq/G11 are required for basal endothelial NO formation, vascular tone, and blood pressure.

Authors

ShengPeng Wang, András Iring, Boris Strilic, Julián Albarrán Juárez, Harmandeep Kaur, Kerstin Troidl, Sarah Tonack, Joachim C. Burbiel, Christa E. Müller, Ingrid Fleming, Jon O. Lundberg, Nina Wettschureck, Stefan Offermanns

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Figure 5

Endothelial P2Y2 controls vascular tone and blood pressure.

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Endothelial P2Y2 controls vascular tone and blood pressure.
(A) Effect o...
(A) Effect of increased perfusion flow (left) and increasing SNP (middle) and ACh concentrations (right) on the diameter of mesenteric arteries from WT (left: n = 9; middle: n = 3; right: n = 6) and EC-P2Y2–KO (left: n = 13; middle: n = 3; right: n = 6) mice. Vessels were precontracted with 100 nM U46619. (B) Blood pressure in WT (n = 9) and EC-P2Y2–KO mice (n = 8) before, during, and after induction. Average blood pressure 5 days before induction was set to 100%. Graphs show systolic and diastolic arterial blood pressure 4 days before tamoxifen treatment and in the second week after induction. (C) Phosphorylation of eNOS at serine 1176 in lysates from mesenteric arteries prepared 3 days after induction in WT and EC-P2Y2–KO mice. Graph shows a densitometric evaluation (n = 4). Data represent the mean ± SEM; *P ≤ 0.05. **P ≤ 0.01, and ***P ≤ 0.001, by 2-tailed Student’s t test (B and C) and 2-way ANOVA, with Bonferroni’s post-hoc test (A).

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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