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Performing Data Mining And Integrative Analysis Of Biomarker in Breast Cancer Using Multiple Publicly Accessible Databases
Published on: May 17, 2019
AI-genomics synergy for drug repurposing in breast cancer: an interpretability-driven framework
Rahaf M Ahmad1, Salahdein Aburuz2, Bassam R Ali3,4
1Department of Genetics and Genomics, College of Medicine and Health Sciences, United Arab Emirates University, Al-Ain, United Arab Emirates.
Artificial intelligence aids breast cancer drug repurposing by integrating multi-omics data to identify subtype-specific drug hypotheses. This approach enhances precision oncology by linking computational findings to clinical applications for better treatment strategies.
Area of Science:
- Oncology
- Genomics
- Artificial Intelligence
Background:
- Genomic heterogeneity in breast cancer presents challenges for traditional drug discovery.
- Drug repurposing is a promising but complex strategy for overcoming these challenges.
Purpose of the Study:
- To review artificial intelligence (AI)-driven computational approaches for breast cancer drug repurposing.
- To propose an integrated framework for linking AI findings to clinical translation in precision oncology.
Main Methods:
- Examination of AI-driven computational methods, including signature-based and multi-modal frameworks.
- Integration of multi-omics data to uncover drug-gene-disease relationships.
- Development of an interpretability-driven framework.
Main Results:
- AI enables the generation of subtype-specific drug repurposing hypotheses by integrating diverse biological data.
- The proposed framework aims to bridge mechanistic validation and clinical translation.
- Focus on enhancing transparency and actionability in precision oncology.
Conclusions:
- AI-driven strategies offer a powerful approach to address the complexities of breast cancer drug discovery and repurposing.
- An integrated, interpretability-driven framework is crucial for translating computational findings into effective clinical applications.
- This review highlights the potential of AI to advance precision oncology for breast cancer treatment.
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