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The Na+, K+-ATPase β1 subunit regulates epithelial tight junctions via MRCKα
Haiqing Bai, Rui Zhou, Michael Barravecchia, Rosemary Norman, Alan Friedman, Deborah Yu, Xin Lin, Jennifer L. Young, David A. Dean
Haiqing Bai, Rui Zhou, Michael Barravecchia, Rosemary Norman, Alan Friedman, Deborah Yu, Xin Lin, Jennifer L. Young, David A. Dean
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Research Article Cell biology Pulmonology

The Na+, K+-ATPase β1 subunit regulates epithelial tight junctions via MRCKα

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Abstract

An intact lung epithelial barrier is essential for lung homeostasis. The Na+, K+-ATPase (NKA), primarily serving as an ion transporter, also regulates epithelial barrier function via modulation of tight junctions. However, the underlying mechanism is not well understood. Here, we show that overexpression of the NKA β1 subunit upregulates the expression of tight junction proteins, leading to increased alveolar epithelial barrier function by an ion transport–independent mechanism. Using IP and mass spectrometry, we identified a number of unknown protein interactions of the β1 subunit, including a top candidate, myotonic dystrophy kinase–related cdc42-binding kinase α (MRCKα), which is a protein kinase known to regulate peripheral actin formation. Using a doxycycline-inducible gene expression system, we demonstrated that MRCKα and its downstream activation of myosin light chain is required for the regulation of alveolar barrier function by the NKA β1 subunit. Importantly, MRCKα is expressed in both human airways and alveoli and has reduced expression in patients with acute respiratory distress syndrome (ARDS), a lung illness that can be caused by multiple direct and indirect insults, including the infection of influenza virus and SARS-CoV-2. Our results have elucidated a potentially novel mechanism by which NKA regulates epithelial tight junctions and have identified potential drug targets for treating ARDS and other pulmonary diseases that are caused by barrier dysfunction.

Authors

Haiqing Bai, Rui Zhou, Michael Barravecchia, Rosemary Norman, Alan Friedman, Deborah Yu, Xin Lin, Jennifer L. Young, David A. Dean

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Figure 4

MRCKα is required for the β1 subunit–mediated alveolar barrier tightening.

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MRCKα is required for the β1 subunit–mediated alveolar barrier tightenin...
(A) ATII cells were cotransfected with siRNA (scramble control or against MRCKα) and plasmids (CMV-tet and Tet- β1) 24 hours after isolation. A total of 1 μg/mL doxycycline was added to induce gene expression at day 2. TEER was then measured every 24 hours from day 3 to day 5. ANOVA followed by Bonferroni’s post hoc test was used for statistical analysis, **P < 0.01. (B) ATII cells were cotransfected with plasmids (CMV-tet and Tet-β1) 24 hours after isolation and treated immediately with 2 μM MRCKα inhibitor BDP5290. TEER was measured 24 hours later. Data are presented as mean ± SD. ANOVA followed by Bonferroni’s post hoc test was used for statistical analysis, *P < 0.05. (C) Immunofluorescence staining of zo-1 in cells treated with or without doxycycline for 48 hours after transfection with luciferase plasmid alone, β1 plasmid and siScramble, or β1 plasmid and siMRCKα. Images represent 3 separate experiments. Scale bar: 20 um.(D) Overexpression of MRCKα increases TEER. Data represent n = 6 biological replicates. Data are presented as mean ± SD. ANOVA followed by Bonferroni’s post hoc test was used for statistical analysis, ***P < 0.001.

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