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A Mouse Model of Pulmonary Fibrosis Induced by Nasal Bleomycin Nebulization
Published on: January 20, 2023
Small-Molecule Activation of Protein Phosphatase 2A Counters Bleomycin-Induced Fibrosis in Mice
Meshach Pillai1, Pascale Lafortune1, Abdoulaye Dabo1
1Department of Medicine, The State University of New York Downstate Health Sciences University, Brooklyn, New York 11203, United States.
Abstract:
The activity of protein phosphatase 2A (PP2A), a serine-threonine phosphatase, is reduced in the lung fibroblasts of idiopathic pulmonary fibrosis (IPF) patients. The objective of this study was to determine whether the reactivation of PP2A could reduce fibrosis and preserve the pulmonary function in a bleomycin (BLM) mouse model. Here, we present a new class of direct small-molecule PP2A activators, diarylmethyl-pyran-sulfonamide, exemplified by ATUX-1215. ATUX-1215 has improved metabolic stability and bioavailability compared to our previously described PP2A activators. Primary human lung fibroblasts were exposed to ATUX-1215 and an older generation PP2A activator in combination with TGFβ. ATUX-1215 treatment enhanced the PP2A activity, reduced the phosphorylation of ERK and JNK, and reduced the TGFβ-induced expression of ACTA2, FN1, COL1A1, and COL3A1. C57BL/6J mice were administered 5 mg/kg ATUX-1215 daily following intratracheal instillation of BLM. Three weeks later, forced oscillation and expiratory measurements were performed using the Scireq Flexivent System. ATUX-1215 prevented BLM-induced lung physiology changes, including the preservation of normal PV loop, compliance, tissue elastance, and forced vital capacity. PP2A activity was enhanced with ATUX-1215 and reduced collagen deposition within the lungs. ATUX-1215 also prevented the BLM induction of Acta2, Ccn2, and Fn1 gene expression. Treatment with ATUX-1215 reduced the phosphorylation of ERK, p38, JNK, and Akt and the secretion of IL-12p70, GM-CSF, and IL1α in BLM-treated animals. Delayed treatment with ATUX-1215 was also observed to slow the progression of lung fibrosis. In conclusion, our study indicates that the decrease in PP2A activity, which occurs in fibroblasts from the lungs of IPF subjects, could be restored with ATUX-1215 administration as an antifibrotic agent.
Insights
Reactivating protein phosphatase 2A (PP2A) with ATUX-1215 reduces lung fibrosis and preserves pulmonary function in a bleomycin model. This small molecule shows promise as an antifibrotic agent for idiopathic pulmonary fibrosis (IPF).
Area of Science:
- Pulmonary Medicine
- Pharmacology
- Cell Biology
Background:
- Protein phosphatase 2A (PP2A) activity is diminished in idiopathic pulmonary fibrosis (IPF) lung fibroblasts.
- Restoring PP2A activity may offer a therapeutic strategy for IPF and reduce lung fibrosis.
Purpose of the Study:
- To investigate the efficacy of a novel small-molecule PP2A activator, ATUX-1215, in reducing lung fibrosis and preserving lung function.
- To evaluate ATUX-1215 in both in vitro human lung fibroblast models and an in vivo bleomycin-induced lung fibrosis mouse model.
Main Methods:
- Human lung fibroblasts were treated with ATUX-1215 and TGFβ to assess PP2A activity and gene expression.
- C57BL/6J mice received ATUX-1215 following bleomycin instillation, with pulmonary function assessed using the Scireq Flexivent System.
- Collagen deposition, gene expression, and protein phosphorylation were analyzed in lung tissue.
Main Results:
- ATUX-1215 enhanced PP2A activity, reduced fibrotic markers (ACTA2, FN1, COL1A1, COL3A1) in fibroblasts, and mitigated BLM-induced lung physiology changes in mice.
- Treatment preserved lung compliance, elastance, and forced vital capacity, while reducing collagen deposition and inflammatory markers.
- Delayed ATUX-1215 administration also demonstrated efficacy in slowing fibrosis progression.
Conclusions:
- ATUX-1215 effectively reactivates PP2A, demonstrating significant antifibrotic effects in vitro and in vivo.
- This novel activator represents a promising therapeutic candidate for treating IPF by restoring PP2A activity and combating lung fibrosis.
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