A Methodological Approach to Identify Natural Compounds with Antifibrotic Activity and the Potential to Treat
Simon H Apte1,2, Penny L Groves1, Maxine E Tan1,2
1Queensland Lung Transplant Service, The Prince Charles Hospital, Brisbane, QLD 4032, Australia.
Abstract:
Idiopathic pulmonary fibrosis (IPF) is the most common and lethal form of the interstitial pneumonias. The cause of the disease is unknown, and new therapies that stop or reverse disease progression are desperately needed. Recent advances in next-generation sequencing have led to an abundance of freely available, clinically relevant, organ-and-disease-specific, single-cell transcriptomic data, including studies from patients with IPF. We mined data from published IPF data sets and identified gene signatures delineating pro-fibrotic or antifibrotic macrophages and then used the Enrichr platform to identify compounds with the potential to drive the macrophages toward the antifibrotic transcriptotype. We then began testing these compounds in a novel in vitro phenotypic drug screening assay utilising human lung macrophages recovered from whole-lung lavage of patients with silicosis. As predicted by the Enrichr tool, glitazones potently modulated macrophage gene expression towards the antifibrotic phenotype. Next, we assayed a subset of the NatureBank pure compound library and identified the cyclobutane lignan, endiandrin A, which was isolated from the roots of the endemic Australian rainforest plant, Endiandra anthropophagorum, with a similar antifibrotic potential to the glitazones. These methods open new avenues of exploration to find treatments for lung fibrosis.
Insights
Researchers identified potential treatments for idiopathic pulmonary fibrosis (IPF) by analyzing macrophage gene signatures. Glitazones and endiandrin A showed promise in modulating macrophages towards an antifibrotic phenotype, offering new therapeutic avenues.
Area of Science:
- Pulmonary Medicine
- Immunology
- Pharmacology
Background:
- Idiopathic pulmonary fibrosis (IPF) is a fatal lung disease with unknown causes and limited treatment options.
- Single-cell transcriptomic data offers insights into IPF pathogenesis and potential therapeutic targets.
Purpose of the Study:
- To identify compounds that can reverse pro-fibrotic macrophage activity in IPF.
- To explore novel therapeutic strategies for treating lung fibrosis.
Main Methods:
- Mining publicly available IPF transcriptomic datasets to identify macrophage gene signatures.
- Utilizing the Enrichr platform to predict compounds modulating macrophage phenotypes.
- In vitro drug screening of human lung macrophages using identified compounds.
Main Results:
- Glitazones effectively shifted macrophage gene expression towards an antifibrotic phenotype.
- Endiandrin A, a plant-derived compound, demonstrated significant antifibrotic potential comparable to glitazones.
- The study validated computational predictions with experimental drug screening.
Conclusions:
- Glitazones and endiandrin A represent promising candidates for IPF treatment by targeting macrophage polarization.
- This approach of combining transcriptomic analysis with drug screening opens new avenues for discovering antifibrotic therapies.
- Further research is warranted to explore the therapeutic efficacy of these compounds in IPF models.
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