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Forskolin-induced Swelling in Intestinal Organoids: An In Vitro Assay for Assessing Drug Response in Cystic Fibrosis Patients
Published on: February 11, 2017
Translating in vitro CFTR rescue into small molecule correctors for cystic fibrosis using the Library of Integrated
Matthew D Strub1,2, Shyam Ramachandran1, Dmitri Y Boudko3
1Department of Pediatrics, University of Iowa, Iowa City, Iowa, USA.
Abstract:
Cystic fibrosis (CF) is a lethal autosomal recessive disease caused by mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) gene. The common ΔF508-CFTR mutation results in protein misfolding and proteasomal degradation. If ΔF508-CFTR trafficks to the cell surface, its anion channel function may be partially restored. Several in vitro strategies can partially correct ΔF508-CFTR trafficking and function, including low-temperature, small molecules, overexpression of miR-138, or knockdown of SIN3A. The challenge remains to translate such interventions into therapies and to understand their mechanisms. One approach for connecting such interventions to small molecule therapies that has previously succeeded for CF and other diseases is via mRNA expression profiling and iterative searches of small molecules with similar expression signatures. Here, we query the Library of Integrated Network-based Cellular Signatures using transcriptomic signatures from previously generated CF expression data, including RNAi- and low temperature-based rescue signatures. This LINCS in silico screen prioritized 135 small molecules that mimicked our rescue interventions based on their genomewide transcriptional perturbations. Functional screens of these small molecules identified eight compounds that partially restored ΔF508-CFTR function, as assessed by cAMP-activated chloride conductance. Of these, XL147 rescued ΔF508-CFTR function in primary CF airway epithelia, while also showing cooperativity when administered with C18. Improved CF corrector therapies are needed and this integrative drug prioritization approach offers a novel method to both identify small molecules that may rescue ΔF508-CFTR function and identify gene networks underlying such rescue.
Insights
This study identifies small molecules to potentially treat cystic fibrosis (CF) by correcting the misfolded CFTR protein. Eight compounds partially restored function, with XL147 showing promise in CF airway cells.
Area of Science:
- Molecular Biology
- Genetics
- Pharmacology
Background:
- Cystic fibrosis (CF) is a fatal genetic disorder caused by mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) gene.
- The common ΔF508-CFTR mutation leads to protein misfolding, degradation, and impaired anion channel function.
Purpose of the Study:
- To identify novel small molecules that can correct ΔF508-CFTR trafficking and function.
- To leverage transcriptomic signatures and in silico screening for drug discovery in CF.
Main Methods:
- Utilized the Library of Integrated Network-based Cellular Signatures (LINCS) database for in silico screening.
- Queried transcriptomic data from CF expression profiles and rescue signatures (RNAi, low temperature).
- Conducted functional screens of prioritized small molecules assessing cAMP-activated chloride conductance.
Main Results:
- Prioritized 135 small molecules based on transcriptional perturbations mimicking rescue interventions.
- Identified eight compounds that partially restored ΔF508-CFTR function.
- XL147 demonstrated efficacy in primary CF airway epithelia and synergistic effects with C18.
Conclusions:
- An integrative drug prioritization approach using transcriptomic signatures is effective for identifying CFTR-modulating small molecules.
- XL147 and potentially combination therapies show promise for treating CF by restoring ΔF508-CFTR function.
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