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Computational Drug Repositioning for Gastric Cancer using Reversal Gene Expression Profiles
In-Wha Kim1, Hayoung Jang2, Jae Hyun Kim2
1College of Pharmacy and Research Institute of Pharmaceutical Sciences, Seoul National University, Seoul, Republic of Korea. iwkim2@hanmail.net.
Abstract:
Treatment of gastric cancer (GC) often produces poor outcomes. Moreover, predicting which GC treatments will be effective remains challenging. Computational drug repositioning using public databases is a promising and efficient tool for discovering new uses for existing drugs. Here we used a computational reversal of gene expression approach based on effects on gene expression signatures by GC disease and drugs to explore new GC drug candidates. Gene expression profiles for individual GC tumoral and normal gastric tissue samples were downloaded from the Gene Expression Omnibus (GEO) and differentially expressed genes (DEGs) in GC were determined with a meta-signature analysis. Profiles drug activity and drug-induced gene expression were downloaded from the ChEMBL and the LINCS databases, respectively. Candidate drugs to treat GC were predicted using reversal gene expression score (RGES). Drug candidates including sorafenib, olaparib, elesclomol, tanespimycin, selumetinib, and ponatinib were predicted to be active for treatment of GC. Meanwhile, GC-related genes such as PLOD3, COL4A1, UBE2C, MIF, and PRPF5 were identified as having gene expression profiles that can be reversed by drugs. These findings support the use of a computational reversal gene expression approach to identify new drug candidates that can be used to treat GC.
Insights
This study identifies potential new gastric cancer (GC) treatments using computational drug repositioning. The approach predicts drugs like sorafenib and olaparib by analyzing gene expression changes in cancer.
Area of Science:
- Computational biology
- Genomics
- Pharmacology
Background:
- Gastric cancer (GC) treatment outcomes are often poor, and predicting effective therapies is difficult.
- Computational drug repositioning offers an efficient method for identifying novel therapeutic applications for existing drugs.
Purpose of the Study:
- To explore novel drug candidates for gastric cancer (GC) using a computational reversal of gene expression approach.
- To identify GC-related genes whose expression profiles can be reversed by drug treatments.
Main Methods:
- Downloaded GC tumoral and normal tissue gene expression profiles from Gene Expression Omnibus (GEO).
- Performed meta-signature analysis to determine differentially expressed genes (DEGs) in GC.
- Utilized ChEMBL and LINCS databases for drug activity and gene expression profiles.
- Predicted candidate drugs using the reversal gene expression score (RGES).
Main Results:
- Identified sorafenib, olaparib, elesclomol, tanespimycin, selumetinib, and ponatinib as potential GC treatment candidates.
- Discovered GC-related genes (PLOD3, COL4A1, UBE2C, MIF, PRPF5) with drug-reversible gene expression profiles.
Conclusions:
- The computational reversal of gene expression approach is effective for identifying new drug candidates for gastric cancer.
- This method provides a promising strategy for discovering novel treatments for GC.
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