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Wax, M.

Publications and source records attributed to Wax, M..

2 recordsLinked to original sources

NINTEDANIB AND PIRFENIDONE AFFECT GROWTH AND DIFFERENTIATION OF HUMAN ALVEOLAR TYPE 2 CELLS

BackgroundIdiopathic pulmonary fibrosis (IPF) is a progressive fibrotic lung disease characterized by epithelial cell senescence. Pirfenidone and nintedanib are approved drugs for the treatment of IPF. They significantly slow disease progression, but their mechanisms of action, especially on alveolar type 2 (AT2) cells, are poorly understood. We addressed this question by evaluating colony formation and growth of human AT2 cells co-cultured with fibroblasts in organoid culture in the presence of pirfenidone and nintedanib. We further evaluated molecular changes induced by these drugs via single cell RNA-seq of treated organoids. MethodsAT2 cells isolated from normal donor lungs or IPF patients were mixed with human fibroblasts in 3D culture and grown in the absence or presence of pirfenidone or nintedanib. After 14 days in culture, the organoids were quantified and cells extracted from Matrigel for single cell RNA-seq. ResultsAT2 cell organoids cultured in the presence of pirfenidone or nintedanib resulted in increased colony formation and, in the case of nintedanib, in larger colonies. We observed that untreated or pirfenidone treated AT2 cells lost surfactant protein C (SFTPC) expression and acquired an expression profile consistent with keratin (KRT)17high/KRT5- basaloid cells, whereas a larger proportion of nintedanib treated cells retained SFTPC expression. In contrast, AT2 cells treated with TGF{beta} inhibitor exhibited intermediate (SFTPC-/KRT17low) gene expression profile. ConclusionThese results suggest that nintedanib maintains an AT2-like expression state in culture and acts proximal to TGF{beta}. Conflict of Interest StatementPJW was supported by grants from Boehringer Ingelheim, Roche, Sanofi, Pliant and Arda Therapeutics and received personal fees from Boehringer Ingelheim and Sanofi. None of these companies had a role in the design or analysis of the study or in the writing of the manuscript. ASM, GP, JRR and DG are employees of Genetech. The other authors have no conflicts of interest to declare.

cell biology↗

Cellular profiling identifies an early profibrotic alveolar type 2 cell signature in lung fibrosis

RationaleIdiopathic pulmonary fibrosis (IPF) is a progressive, age-associated, lung disease characterized by short telomeres in alveolar type 2 (AT2) cells, epithelial remodeling, and fibrosis. ObjectivesThis study investigated how telomere dysfunction in AT2 cells lacking Telomere Repeat Binding Factor 1 (TRF1) drives lung remodeling in SPC-creTRF1flox/flox mice and its relevance to IPF. MethodsMouse model of telomere dysfunction was used to conditionally delete TRF1 in AT2 cells. SPC-creTRF1flox/flox mouse lung epithelial cells were used to perform single cell RNA sequencing. AT2 cells from IPF lungs were analyzed by single cell RNA sequencing in an organoid model. Measurements and Main ResultsSingle cell RNA-sequencing revealed distinct pathological AT2 cells enriched in DNA damage, senescence, oxidative stress, and pro-fibrotic genes, along with fewer "normal" AT2 cells and increased club cells in SPC-creTRF1flox/flox mice. Pathological AT2 cells showed different early and late-stage gene signatures, with a prominent p53 signature at both time-points. Genetic deletion of p53 in SPC-creTRF1flox/flox AT2 cells improved survival and prevented lung fibrosis. p53 deletion or inhibition improved organoid formation, surfactant protein C expression, and reduced pro-fibrotic gene expression in AT2 cells isolated from SPC-creTRF1flox/flox mice or IPF lungs. ConclusionsThese data suggest that the DNA damage response to AT2 cell telomere dysfunction, driven by enhanced p53 activity, mediates early AT2 cell transdifferentiation and senescence, leading to epithelial cell remodeling and fibrosis and that reversing this reprogramming is a potential therapeutic approach for managing IPF.

cell biology↗