Meta-Analysis and Topological Perturbation in Interactomic Network for Antiopioid Addiction Drug Repurposing
Chunhuan Zhang1, Sean Cottrell2, Benjamin Jones2
1Research Center of Nonlinear Science, School of Mathematics and Statistics, Wuhan Textile University, Wuhan 430200, P. R. China.
Abstract:
The ongoing opioid crisis highlights the urgent need for novel therapeutic strategies that can be rapidly deployed. This study presents a novel approach to identify potential repurposable drugs for the treatment of opioid addiction, aiming to bridge the gap between transcriptomic data analysis and drug discovery. Specifically, we perform a meta-analysis of seven transcriptomic data sets related to opioid addiction by differential gene expression (DGE) analysis and propose a novel multiscale topological differentiation to identify key genes from a protein-protein interaction (PPI) network derived from DEGs. This method uses persistent Laplacians to accurately single out important nodes within the PPI network through a multiscale manner to ensure high reliability. Subsequent functional validation by pathway enrichment and rigorous data curation yields 1,865 high-confidence targets implicated in opioid addiction, which are cross-referenced with DrugBank to compile a repurposing candidate list. To evaluate drug-target interactions, we construct predictive models utilizing two natural language processing-derived molecular embeddings and a conventional molecular fingerprint. Based on these models, we prioritize compounds with favorable binding affinity profiles, and select candidates that are further assessed through molecular docking simulations to elucidate their receptor-level interactions. Additionally, pharmacokinetic and toxicological evaluations are performed via ADMET (absorption, distribution, metabolism, excretion, and toxicity) profiling, providing a multidimensional assessment of druggability and safety. This study offers a generalizable approach for drug repurposing in other complex diseases beyond opioid addiction.
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