Pathway-Based Drug-Repurposing Schemes in Cancer: The Role of Translational Bioinformatics

Enrique Hernández-Lemus1,2, Mireya Martínez-García3

  • 1Computational Genomics Division, National Institute of Genomic Medicine, Mexico City, Mexico.

Frontiers in Oncology
|February 1, 2021
PubMed

Insights

Cancer treatment is shifting from targeting single genes to a systemic pathway-based approach. This "shrapnel approach" offers new hope for complex, heterogeneous tumors resistant to traditional therapies.

Area of Science:

  • Oncology
  • Bioinformatics
  • Computational Biology

Background:

  • Cancer presents complex challenges in clinical oncology due to tumor heterogeneity and multi-drug resistance.
  • Traditional gene-centric therapies (silver bullets) are effective only when specific driver mutations are present.
  • Tumor variability often manifests as pathway dysfunctions, necessitating alternative therapeutic strategies.

Purpose of the Study:

  • To present a conceptual shift in cancer therapeutics from gene-centric to systemic pathway-based approaches.
  • To discuss the state-of-the-art in pathway-based therapeutic designs.
  • To highlight the role of translational bioinformatics and computational oncology.

Main Methods:

  • Review of existing therapeutic strategies, including gene-centric and pathway-based approaches.
  • Discussion of computational and theoretical advances in cancer research.
  • Emphasis on translational bioinformatics and computational oncology perspectives.

Main Results:

  • A conceptual shift towards a systemic, pathway-based therapeutic strategy (shrapnel approach) is emerging.
  • The shrapnel approach may be more effective than the silver bullet approach for heterogeneous tumors.
  • Advancements in computational methods are crucial for developing pathway-based therapies.

Conclusions:

  • Pathway-based therapeutic designs represent a promising avenue for overcoming cancer treatment challenges.
  • Multidisciplinary collaboration is essential for advancing pathway-based cancer therapies.
  • Integrating high-throughput data analysis, database mining, and clinical data research is key to improving patient outcomes.

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