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Airway epithelial homeostasis and planar cell polarity signaling depend on multiciliated cell differentiation
Eszter K. Vladar, Jayakar V. Nayak, Carlos E. Milla, Jeffrey D. Axelrod
Eszter K. Vladar, Jayakar V. Nayak, Carlos E. Milla, Jeffrey D. Axelrod
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Research Article Cell biology Pulmonology

Airway epithelial homeostasis and planar cell polarity signaling depend on multiciliated cell differentiation

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Abstract

Motile airway cilia that propel contaminants out of the lung are oriented in a common direction by planar cell polarity (PCP) signaling, which localizes PCP protein complexes to opposite cell sides throughout the epithelium to orient cytoskeletal remodeling. In airway epithelia, PCP is determined in a 2-phase process. First, cell-cell communication via PCP complexes polarizes all cells with respect to the proximal-distal tissue axis. Second, during ciliogenesis, multiciliated cells (MCCs) undergo cytoskeletal remodeling to orient their cilia in the proximal direction. The second phase not only directs cilium polarization, but also consolidates polarization across the epithelium. Here, we demonstrate that in airway epithelia, PCP depends on MCC differentiation. PCP mutant epithelia have misaligned cilia, and also display defective barrier function and regeneration, indicating that PCP regulates multiple aspects of airway epithelial homeostasis. In humans, MCCs are often sparse in chronic inflammatory diseases, and these airways exhibit PCP dysfunction. The presence of insufficient MCCs impairs mucociliary clearance in part by disrupting PCP-driven polarization of the epithelium. Consistent with defective PCP, barrier function and regeneration are also disrupted. Pharmacological stimulation of MCC differentiation restores PCP and reverses these defects, suggesting its potential for broad therapeutic benefit in chronic inflammatory disease.

Authors

Eszter K. Vladar, Jayakar V. Nayak, Carlos E. Milla, Jeffrey D. Axelrod

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Figure 2

Vangl1 expression and localization depend on multiciliated cell differentiation.

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Vangl1 expression and localization depend on multiciliated cell differen...
(A) Foxj1+/– and Foxj1–/– E18.5 (left) and adult (right) mouse tracheas whole-mount labeled with Vangl1 (green), acetylated α-tubulin (cilia, red), and Ecad (blue) antibodies show that Vangl1 is initially asymmetric in Foxj1–/– cells, but uniformly localized in adults. Images are representative of n = 3 Foxj1–/– mice and littermate controls. (B) Mouse tracheal epithelial cells (MTECs) cultured submerged (no air-liquid interface [ALI]) for 5+14 days (control MTECs were cultured submerged for 5, then at ALI for 14 days) or treated with IL-13 from ALI+0 to 14 days and labeled with Vangl1 (green), acetylated α-tubulin (cilia, red), and Ecad (blue) antibodies, showing that Vangl1 is absent when multiciliated cell (MCC) differentiation is blocked. (C) MTECs infected with GFP or myc-ΔCC-Mcidas lentivirus at day 4 of culture and labeled at ALI+14 days with Vangl1 (green), acetylated α-tubulin (cilia, red), and Ecad (blue) antibodies show that Vangl1 localization does not evolve when MCC differentiation is blocked. (D) MTECs infected with scrambled or Cep83 shRNA lentivirus at day 4 of culture labeled at ALI+14 days with Vangl1 (green), γ-tubulin (centrioles, red), and Ecad (blue) antibodies show that Vangl1 localization is unaffected in Cep83-depleted MCCs that fail to dock their basal bodies. (E) MTECs infected with scrambled or Ift88 shRNA lentivirus at day 4 of culture and labeled at ALI+14 days with Vangl1 (green), acetylated α-tubulin (cilia, red), and Ecad (blue) antibodies show that Vangl1 localization is unaffected in Ift88-depleted MCCs without axonemes. Acetylated α-tubulin faintly labels docked basal bodies without strongly labeling axonemes in Ift88-depleted MCCs. Manders’ overlap coefficient ± standard error indicated on merged images. Scale bars: 25 μm (A), 10 μm (B–E). Images in B–E are representative of n = 3 lentiviral infections or drug treatments of MTECs.

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