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Updated: Jun 12, 2025

Drug Repurposing Hypothesis Generation Using the "RE:fine Drugs" System
Published on: December 11, 2016
DRADTiP: Drug repurposing for aging disease through drug-target interaction prediction
Saranya Muniyappan1, Arockia Xavier Annie Rayan1, Geetha Thekkumpurath Varrieth1
1Computer Science and Engineering, CEG Campus, Anna University, Chennai, Tamil Nadu, India.
Motivation:
The greatest risk factor for many non-communicable diseases is aging. Studies on model organisms have demonstrated that genetic and chemical perturbation alterations can lengthen longevity and overall health. However, finding longevity-enhancing medications and their related targets is difficult.
Method:
In this work, we designed a novel drug repurposing model by identifying the interaction between aging-related genes or targets and drugs similar to aging disease. Each disease is associated with certain specific genetic factors for the occurrence of that disease. The factors include gene expression, pathway, miRNA, and degree of genes in the protein-protein interaction network. In this paper, we aim to find the drugs that prolong the life span of humans with their aging-related targets using the above-mentioned factors. In addition, the contribution or importance of each factor may vary among drugs and targets. Therefore, we designed a novel multi-layer random walk-based network representation learning model including node and edge weight to learn the features of drugs and targets respectively.
Result:
The performance of the proposed model is demonstrated using k-fold cross-validation (k = 5). This model achieved better performance with scores of 0.93 and 0.91 for precision and recall respectively. The drugs identified by the system are evaluated to be potential candidates for aging since the degree of interaction between the potential drugs and their gene sets are high. In addition, the genes that are interacting with drugs produce the same biological functions. Hence the life span of the human will be increased or prolonged.
Insights
This study introduces a novel drug repurposing model to identify longevity-enhancing medications by analyzing aging-related gene targets. The model successfully pinpointed potential drugs that could extend human lifespan.
Area of Science:
- Computational biology
- Drug discovery
- Aging research
Background:
- Aging is a primary risk factor for non-communicable diseases.
- Genetic and chemical interventions can extend lifespan and healthspan in model organisms.
- Identifying drugs that promote longevity and their targets remains a significant challenge.
Purpose of the Study:
- To develop a novel drug repurposing model for identifying human lifespan-extending drugs.
- To leverage aging-related genetic factors, including gene expression, pathways, miRNA, and protein-protein interaction networks.
- To discover drugs targeting aging-related genes and their associated biological functions.
Main Methods:
- Designed a multi-layer random walk-based network representation learning model.
- Incorporated node and edge weights to learn drug and target features.
- Integrated multiple aging-related genetic factors for comprehensive analysis.
Main Results:
- Achieved high performance with 0.93 precision and 0.91 recall in k-fold cross-validation (k=5).
- Identified potential drug candidates for aging intervention with high interaction degrees to gene sets.
- Validated that interacting genes share biological functions, supporting lifespan extension potential.
Conclusions:
- The developed model effectively identifies potential longevity-promoting drugs.
- The identified drugs and their targets show promise for increasing human lifespan.
- This approach offers a novel strategy for aging research and drug discovery.
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