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Dysregulated alveolar epithelial cell progenitor function and identity in Hermansky-Pudlak syndrome
Joanna Y. Wang, Sylvia N. Michki, Sneha Sitaraman, Brandon J. Banaschewski, Reshma Jamal, Jason J. Gokey, Susan M. Lin, Jeremy B. Katzen, Maria C. Basil, Edward Cantu, Jonathan A. Kropski, Jarod A. Zepp, David B. Frank, Lisa R. Young
Joanna Y. Wang, Sylvia N. Michki, Sneha Sitaraman, Brandon J. Banaschewski, Reshma Jamal, Jason J. Gokey, Susan M. Lin, Jeremy B. Katzen, Maria C. Basil, Edward Cantu, Jonathan A. Kropski, Jarod A. Zepp, David B. Frank, Lisa R. Young
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Research Article Cell biology Pulmonology

Dysregulated alveolar epithelial cell progenitor function and identity in Hermansky-Pudlak syndrome

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Abstract

Hermansky-Pudlak syndrome (HPS) is a genetic disorder of endosomal protein trafficking associated with pulmonary fibrosis in specific subtypes, including HPS-1 and HPS-2. Single-mutant HPS1 and HPS2 mice display increased fibrotic sensitivity while double-mutant HPS1/2 mice exhibit spontaneous fibrosis with aging, which has been attributed to HPS mutations in alveolar epithelial type II (AT2) cells. We utilized HPS mouse models and human lung tissue to investigate mechanisms of AT2 cell dysfunction driving fibrotic remodeling in HPS. Starting at 8 weeks of age, HPS mice exhibited progressive loss of AT2 cell numbers. HPS AT2 cell function was impaired ex vivo and in vivo. Incorporating AT2 cell lineage tracing in HPS mice, we observed aberrant differentiation with increased AT2-derived alveolar epithelial type I cells. Transcriptomic analysis of HPS AT2 cells revealed elevated expression of genes associated with aberrant differentiation and p53 activation. Lineage-tracing and organoid-modeling studies demonstrated that HPS AT2 cells were primed to persist in a Keratin-8–positive reprogrammed transitional state, mediated by p53 activity. Intrinsic AT2 progenitor cell dysfunction and p53 pathway dysregulation are mechanisms of disease in HPS-related pulmonary fibrosis, with the potential for early targeted intervention before the onset of fibrotic lung disease.

Authors

Joanna Y. Wang, Sylvia N. Michki, Sneha Sitaraman, Brandon J. Banaschewski, Reshma Jamal, Jason J. Gokey, Susan M. Lin, Jeremy B. Katzen, Maria C. Basil, Edward Cantu, Jonathan A. Kropski, Jarod A. Zepp, David B. Frank, Lisa R. Young

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Figure 4

Lineage tracing of AT2 cells in HPS mice demonstrates aberrant differentiation at 8 weeks of age.

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Lineage tracing of AT2 cells in HPS mice demonstrates aberrant different...
(A) Schematic of lineage labeling AT2 cells in WT, HPS1, HPS2, and HPS1/2 SftpcCreERT2/+ R26REYFP/+ mice. (B) From images in Supplemental Figure 6A, quantification of EYFP+proSP-C– cells as a percentage of EYFP+ lineage cells in WT, HPS1, HPS2, and HPS1/2 SftpcCreERT2/+ R26REYFP/+ mice at 8 and 24 weeks of age. (C) IF staining of whole-mount lung tissue for EYFP, AGER, and LAMP3 in WT, HPS1, HPS2, and HPS1/2 SftpcCreERT2/+ R26REYFP/+ mice at 8 weeks of age. Dashed line boxes represent squamous EYFP+AGER+LAMP3– AT2-derived AT1 cells with AGER and EYFP and merged images shown below. (D) IF staining of HPS1/2 SftpcCreERT2/+ R26REYFP/+ mice at 8 and 24 weeks of age, with arrows indicating cuboidal EYFP+AGER–LAMP3– cells with EYFP and LAMP3 images shown below. HPS1/2 SftpcCreERT2/+ R26REYFP/+ 8-week images (C) and demonstrated again (D) capture simultaneous presence of squamous EYFP+AGER+LAMP3– and cuboidal EYFP+AGER–LAMP3– cells. DAPI stains nuclei (blue). All quantification data are represented as mean ± SEM. Statistics using 2-tailed unpaired Student’s t tests: *** P < 0.001; **** P < 0.0001. n = 3–4 per group per time point. Scale bars in C and D, 20 μm (inset boxes equal scale to main image). Schematic created with BioRender.com.

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