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Drug Repurposing Hypothesis Generation Using the "RE:fine Drugs" System
Published on: December 11, 2016
Drug repurposing for hyperlipidemia associated disorders: An integrative network biology and machine learning
Sneha Rai1, Venugopal Bhatia2, Sonika Bhatnagar3
1Computational and Structural Biology Laboratory, Division of Biotechnology, Netaji Subhas Institute of Technology, Dwarka, New Delhi, 110078, India; Department of Biotechnology, Noida Institute of Engineering and Technology, Greater Noida, India.
Insights
This study identifies key molecular targets for hyperlipidemia (HL) and uses machine learning to predict drug repurposing. Nine drugs were identified as potential treatments for HL-associated diseases.
Area of Science:
- Biochemistry
- Bioinformatics
- Pharmacology
Background:
- Hyperlipidemia (HL) is linked to severe diseases including cardiovascular disease, cancer, Type II Diabetes, and Alzheimer's disease.
- Effective treatments require drugs that specifically target HL-associated conditions.
Purpose of the Study:
- To identify critical molecular targets in hyperlipidemia.
- To predict potential drug repurposing for hyperlipidemia and its associated diseases using network analysis and machine learning.
Main Methods:
- Constructed a protein-protein interaction network using 34 KEGG pathways associated with lipid-lowering drugs.
- Identified driver nodes using Cytoscape and verified their involvement in other diseases via GWAS.
- Trained a Random Forest classifier on molecular descriptors of approved lipid-lowering and lipid-raising drugs.
Main Results:
- Central nodes and 34 overrepresented pathways were found to be critical in hyperlipidemia.
- The PI3K-AKT signaling pathway, non-essentiality, non-centrality, and approved drug target status characterized driver nodes.
- The Random Forest classifier achieved 76.8% average accuracy and an AUC of 0.79 ± 0.06.
Conclusions:
- Integrated network data and machine learning effectively predicted drug repurposing.
- Identified nine drugs for potential repurposing in treating hyperlipidemia-associated diseases.
Abstract:
Hyperlipidemia causes diseases like cardiovascular disease, cancer, Type II Diabetes and Alzheimer's disease. Drugs that specifically target HL associated diseases are required for treatment. 34 KEGG pathways targeted by lipid lowering drugs were used to construct a directed protein-protein interaction network and driver nodes were determined using CytoCtrlAnalyser plugin of Cytoscape 3.6. The involvement of driver nodes of HL in other diseases was verified using GWAS. The central nodes of the network and 34 overrepresented pathways had a critical role in Hyperlipidemia. The PI3K-AKT signalling pathway, non-essentiality, non-centrality and approved drug target status were the predominant features of the driver nodes. Next, a Random Forest classifier was trained on 1445 molecular descriptors calculated using PaDEL for 50 approved lipid lowering and 84 lipid raising drugs as the positive and negative training set respectively. The classifier showed average accuracy of 76.8 % during 5-fold cross validation with AUC of 0.79 ± 0.06 for the ROC curve. The classifier was applied to select molecules with favourable properties for lipid lowering from the 130 approved drugs interacting with the identified driver nodes. We have integrated diverse network data and machine learning to predict repurposing of nine drugs for treatment of HL associated diseases.
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