Computer-aided drug repurposing for cancer therapy: Approaches and opportunities to challenge anticancer targets

Carla Mottini1, Francesco Napolitano2, Zhongxiao Li2

  • 1Department of Tumour Immunology and Immunotherapy, IRCCS Regina Elena National Cancer Institute, Rome, Italy.

Seminars in Cancer Biology
|September 29, 2019
PubMed

Insights

Drug repurposing uses existing drugs for new cancer therapies. In-silico drug repurposing leverages big data and computational tools to predict drug efficacy against cancer targets, improving treatment options.

Area of Science:

  • Oncology
  • Computational Biology
  • Pharmacology

Background:

  • Current cancer therapies are effective in limited cases, facing challenges like chemoresistance and treatment resistance.
  • Metastases, tumor microenvironments, and heterogeneity complicate effective cancer treatment strategies.
  • Drug repurposing offers an appealing strategy to overcome the plateau in pharmaceutical productivity and drug efficacy in oncology.

Purpose of the Study:

  • To review disease-related data and computational tools for in-silico drug repurposing in cancer therapy.
  • To focus on oncogenic signaling pathways and their activation in cancer.
  • To discuss the potential of in-silico drug repurposing to enhance anticancer drug arsenals and overcome limitations.

Main Methods:

  • Utilizing big data, -omics technologies, and machine learning algorithms for hypothesis-driven drug repurposing.
  • Developing computational drug networks to predict drug efficacy against cancer targets.
  • Analyzing disease-related and drug-related data for in-silico predictions.

Main Results:

  • In-silico drug repurposing provides a cost- and time-effective approach to identify potential cancer therapies.
  • Computational tools can predict the efficacy of approved drugs against relevant cancer targets.
  • This approach aids in selecting better responder patients and identifying disease biomarkers.

Conclusions:

  • In-silico drug repurposing holds promise for rapidly improving anticancer drug options.
  • This strategy can potentially overcome limitations of current cancer therapies against both existing and novel targets.
  • It offers a data-driven, hypothesis-generating approach to advance oncology drug discovery.

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