Literature DB >> 30489156

Molecular characterization of a precision-cut rat lung slice model for the evaluation of antifibrotic drugs.

Xinqiang Huang1, Li Li1, Ron Ammar1, Yan Zhang1, Yihe Wang1, Kandasamy Ravi1, John Thompson1, Gabor Jarai1.   

Abstract

The translation of novel pulmonary fibrosis therapies from preclinical models into the clinic represents a major challenge demonstrated by the high attrition rate of compounds that showed efficacy in preclinical models but demonstrated no significant beneficial effects in clinical trials. A precision-cut lung tissue slice (PCLS) contains all major cell types of the lung and preserves the original cell-cell and cell-matrix contacts. It represents a promising ex vivo model to study pulmonary fibrosis. In this study, using RNA sequencing, we demonstrated that transforming growth factor-β1 (TGFβ1) induced robust fibrotic responses in the rat PCLS model, as it changed the expression of genes functionally related to extracellular matrix remodeling, cell adhesion, epithelial-to-mesenchymal transition, and various immune responses. Nintedanib, pirfenidone, and sorafenib each reversed a subset of genes modulated by TGFβ1, and of those genes we identified 229 whose expression was reversed by all three drugs. These genes define a molecular signature characterizing many aspects of pulmonary fibrosis pathology and its attenuation in the rat PCLS fibrosis model. A panel of 12 genes and three secreted biomarkers, including procollagen I, hyaluronic acid, and WNT1-inducible signaling pathway protein 1 were validated as efficacy end points for the evaluation of antifibrotic activity of experimental compounds. Finally, we showed that blockade of αV-integrins suppressed TGFβ1-induced fibrotic responses in the rat PCLS fibrosis model. Overall, our results suggest that the TGFβ1-induced rat PCLS fibrosis model may represent a valuable system for target validation and to determine the efficacy of experimental compounds.

Entities:  

Keywords:  lung slice; model; pulmonary fibrosis

Year:  2018        PMID: 30489156     DOI: 10.1152/ajplung.00339.2018

Source DB:  PubMed          Journal:  Am J Physiol Lung Cell Mol Physiol        ISSN: 1040-0605            Impact factor:   5.464


  4 in total

1.  The Scar-in-a-Jar: In Vitro Fibrosis Model for Anti-Fibrotic Drug Testing.

Authors:  Simon Stebler; Michael Raghunath
Journal:  Methods Mol Biol       Date:  2021

2.  Growth Hormone-Releasing Hormone Receptor Antagonist Modulates Lung Inflammation and Fibrosis due to Bleomycin.

Authors:  Chongxu Zhang; Renzhi Cai; Aaron Lazerson; Gaetan Delcroix; Medhi Wangpaichitr; Mehdi Mirsaeidi; Anthony J Griswold; Andrew V Schally; Robert M Jackson
Journal:  Lung       Date:  2019-08-07       Impact factor: 2.584

3.  An integrated multiomic and quantitative label-free microscopy-based approach to study pro-fibrotic signalling in ex vivo human precision-cut lung slices.

Authors:  Muzamil Majid Khan; Daniel Poeckel; Aliaksandr Halavatyi; Joanna Zukowska-Kasprzyk; Frank Stein; Johanna Vappiani; Daniel C Sevin; Christian Tischer; Nico Zinn; Jessica D Eley; Natasja Stæhr Gudmann; Thomas Muley; Hauke Winter; Andrew J Fisher; Carmel B Nanthakumar; Giovanna Bergamini; Rainer Pepperkok
Journal:  Eur Respir J       Date:  2021-07-01       Impact factor: 16.671

4.  The Use of Precision-Cut Lung Slices for Studying Innate Immunity to Viral Infections.

Authors:  Christina Michalaki; Charlotte Dean; Cecilia Johansson
Journal:  Curr Protoc       Date:  2022-08
  4 in total

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