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TP53/TAU axis regulates microtubule bundling to control alveolar stem cell–mediated regeneration
Satoshi Konishi, Khaliun Enkhbayar, Shuyu Liu, Naoya Miyashita, Yoshihiko Kobayashi, Vera Hutchison, Ashna Sai, Pankaj Agarwal, Jonathan Witonsky, Nathan D. Jackson, Max A. Seibold, Jichao Chen, Aleksandra Tata, Purushothama Rao Tata
Satoshi Konishi, Khaliun Enkhbayar, Shuyu Liu, Naoya Miyashita, Yoshihiko Kobayashi, Vera Hutchison, Ashna Sai, Pankaj Agarwal, Jonathan Witonsky, Nathan D. Jackson, Max A. Seibold, Jichao Chen, Aleksandra Tata, Purushothama Rao Tata
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Research Article Cell biology Pulmonology

TP53/TAU axis regulates microtubule bundling to control alveolar stem cell–mediated regeneration

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Abstract

Cells exhibit diverse sizes and shapes, tailored for functional needs of tissues. Lung alveoli are lined by large, extremely thin epithelial alveolar type 1 cells (AT1s). Their characteristic morphology is essential for lung function and must be restored after injury. The mechanisms underlying small, cuboidal alveolar type 2 cell (AT2) differentiation into thin AT1s remain elusive. Here, we demonstrated that AT2s undergo a stepwise morphological transformation characterized by the development of a unique thick microtubule (MT) bundle organization, critical for AT1 morphology. Using AT2 cultures and in vivo genetic loss-of-function models, we found that MT bundling occurred in a transitional cell state during AT2 differentiation and was regulated by the TP53/TAU (encoded by the microtubule-associated protein tau [MAPT] gene) signaling axis. Notably, TAU underwent a linear clustering process, forming beads-on-a-string-like pattern that preceded thick MT bundle formation. Genetic gain or loss of function of TAU in mouse or human models prevented the formation of thick MT bundles, highlighting the critical role of precise TAU levels in generating ultrathin AT1s. This defect was associated with increased tissue fibrosis following bleomycin-induced injury in vivo. GWAS analysis revealed risk variants in the MAPT locus in lung diseases. Moreover, TP53 controlled TAU expression and its loss phenocopied TAU deficiency. This work revealed an unexpected role for TAU in organizing MT bundles during AT2 differentiation.

Authors

Satoshi Konishi, Khaliun Enkhbayar, Shuyu Liu, Naoya Miyashita, Yoshihiko Kobayashi, Vera Hutchison, Ashna Sai, Pankaj Agarwal, Jonathan Witonsky, Nathan D. Jackson, Max A. Seibold, Jichao Chen, Aleksandra Tata, Purushothama Rao Tata

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Figure 1

Alveolar stem cell MTs undergo dynamic changes to form thick MT bundles during differentiation.

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Alveolar stem cell MTs undergo dynamic changes to form thick MT bundles ...
(A) Experimental design for mouse AT2 isolation, culture, and sample collection. IF, immunofluorescence. (B) Heatmap shows expression of tubulin-encoding and MAP-encoding genes in cultured AT2s, PATS, and AT1s. (C) Staining for TUBA1B (green), phalloidin (red), and AGER (gray) on cells cultured on fibronectin showing AT2-PATS-AT1 cell fate and cell morphology transition. Scale bar: 20 μm. (D) Quantification of area and thickness (in the middle and edge) of alveolar epithelial cells on days 1, 5, and 9 of culture. **P < 0.005, ***P < 0.001, 1-way ANOVA. n = 3 biological replicates. (E) Staining for TUBA1B (green) and GM130 (red) at indicated times. DAPI stains nuclei (blue). Scale bar: 20 μm. (F) Staining for tubulin proteins in AT2s cultured on fibronectin for 9 days. Scale bar: 20 μm. Ac-TUB, acetylated tubulin. (G) Staining for TUBA1B (green), KRT8 (gray), and phalloidin (red) in AT1s. Scale bar: 20 μm. (H) Experimental design for ex vivo and in vivo AT1-specific tubulin lineage tracing in Rtkn2-CreER R26R-Kaleidoscope mice. (I) Images showing TUBA1B-EGFP (green) and LEL (Lycopersicon Esculentum Lectin, gray) in cultured AT1s and in vivo lungs. Scale bars: 20 μm. (J) Experimental workflow for AT2 infection with EB1-EGFP lentivirus followed by live imaging on day 7 and day 14. (K) Kymograph and time-lapse images illustrating tubulin dynamics and orientation in cells on day 7 and day 14. White box indicates region of enlarged image. White arrows indicate direction of growing plus ends of MTs. Scale bars: 20 μm. (L) Quantification of EB1-EGFP comet velocity (μm/min), directionality concentration, angle fluctuation (degree), and track straightness in cells cultured for 7 and 14 days. *P < 0.05, unpaired 2-tailed t test. Data in D and L are presented as mean ± SEM. n = 3 biological replicates.

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

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