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Mechanosensitive membrane domains regulate calcium entry in arterial endothelial cells to protect against inflammation
Soon-Gook Hong, Julianne W. Ashby, John P. Kennelly, Meigan Wu, Michelle Steel, Eesha Chattopadhyay, Rob Foreman, Peter Tontonoz, Elizabeth J. Tarling, Patric Turowski, Marcus Gallagher-Jones, Julia J. Mack
Soon-Gook Hong, Julianne W. Ashby, John P. Kennelly, Meigan Wu, Michelle Steel, Eesha Chattopadhyay, Rob Foreman, Peter Tontonoz, Elizabeth J. Tarling, Patric Turowski, Marcus Gallagher-Jones, Julia J. Mack
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Research Article Cell biology Vascular biology

Mechanosensitive membrane domains regulate calcium entry in arterial endothelial cells to protect against inflammation

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Abstract

Endothelial cells (ECs) in the descending aorta are exposed to high laminar shear stress, and this supports an antiinflammatory phenotype. High laminar shear stress also induces flow-aligned cell elongation and front-rear polarity, but whether these are required for the antiinflammatory phenotype is unclear. Here, we showed that caveolin-1–rich microdomains polarize to the downstream end of ECs that are exposed to continuous high laminar flow. These microdomains were characterized by high membrane rigidity, filamentous actin (F-actin), and raft-associated lipids. Transient receptor potential vanilloid (TRPV4) ion channels were ubiquitously expressed on the plasma membrane but mediated localized Ca2+ entry only at these microdomains where they physically interacted with clustered caveolin-1. These focal Ca2+ bursts activated endothelial nitric oxide synthase within the confines of these domains. Importantly, we found that signaling at these domains required both cell body elongation and sustained flow. Finally, TRPV4 signaling at these domains was necessary and sufficient to suppress inflammatory gene expression and exogenous activation of TRPV4 channels ameliorated the inflammatory response to stimuli both in vitro and in vivo. Our work revealed a polarized mechanosensitive signaling hub in arterial ECs that dampened inflammatory gene expression and promoted cell resilience.

Authors

Soon-Gook Hong, Julianne W. Ashby, John P. Kennelly, Meigan Wu, Michelle Steel, Eesha Chattopadhyay, Rob Foreman, Peter Tontonoz, Elizabeth J. Tarling, Patric Turowski, Marcus Gallagher-Jones, Julia J. Mack

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Figure 1

Membrane polarization and caveolin-1–enriched microdomains in aortic ECs exposed to laminar flow.

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Membrane polarization and caveolin-1–enriched microdomains in aortic ECs...
(A) Confocal imaging of caveolin-1 in the endothelium of mouse descending aorta. Individual cells were segmented into 3 equal-length regions (upstream, mid-body, and downstream), and staining intensity was determined in each segment for 216 cells from n = 4 aortae. Graph displays mean ± SD with data analyzed by 1-way ANOVA and post hoc Tukey’s multiple-comparison test. Scale bar: 20 μm. (B–H) Confluent monolayers of HAECs were exposed to laminar shear stress (20 dynes/cm2) for 48 hours, then imaged. (B) HAECs were stained for caveolin-1, ZO-1, and DAPI, then segmented into 3 equal-length regions, and caveolin-1 staining intensity was quantified for each subcellular region for 79 cells from n = 4 biological replicates. Graph displays mean ± SD with data analyzed by 1-way ANOVA and post hoc Tukey’s multiple-comparison test. Scale bar: 20 μm. (C) Representative generalized polarization (GP) color-coded image to determine membrane fluidity. Higher GP was observed at the downstream end (yellow arrow) compared with the upstream end (blue arrow). Scale bar: 20 μm. (D) Staining of live cells with BODIPY FL C5-Ganglioside GM1 showed polarized accumulation of signal at the downstream end (arrows). Scale bar: 20 μm. (E) Fixed cells showed higher density of F-actin staining at downstream ends (arrows). Scale bar: 20 μm. (F) Imaging of F-actin, caveolin-1, ZO-1, and nuclei highlights presence of caveolin-1 and F-actin at the downstream end, and formation of F-actin web-like features (arrows). Scale bars: 10 μm. (G) 3D surface rendering of the downstream end of a cell showed high density of caveolin-1 where F-actin accumulates. Scale bars: 1 μm. (H) Representative image of caveolin-1, ZO-1, and nuclear staining used for caveolin-1 cluster analysis. Cluster index was determined in subcellular segments and plotted as means ± SD for n = 4 biological replicates. Data were analyzed by 1-way ANOVA and post hoc Tukey’s multiple-comparison test. Scale bar: 10 μm. ****P < 0.0001.

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

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