Large-scale automatic extraction of side effects associated with targeted anticancer drugs from full-text oncological

Rong Xu1, QuanQiu Wang2

  • 1Medical Informatics Program, Center for Clinical Investigation, Case Western Reserve University, Cleveland, OH 44106, United States.

Insights

Researchers developed an automated method to extract targeted anticancer drug side effects from oncology articles. This new database complements existing drug labels and aids in understanding drug toxicities.

Area of Science:

  • Oncology
  • Pharmacovigilance
  • Bioinformatics

Background:

  • Targeted anticancer drugs offer improved outcomes but have unpredictable side effects.
  • Understanding the mechanisms of these side effects is crucial for patient safety.
  • Existing knowledge bases for drug side effects are fragmented.

Purpose of the Study:

  • To develop an automated process for extracting drug-side effect (drug-SE) pairs from full-text oncological articles.
  • To create a comprehensive knowledge base of side effects associated with targeted anticancer drugs.
  • To analyze the relationship between drug-associated side effects, gene targets, and disease indications.

Main Methods:

  • Downloaded 13,855 full-text articles from the Journal of Oncology (JCO).
  • Employed text classification, relationship extraction, signaling filtering, and signal prioritization algorithms.
  • Extracted 26,264 drug-SE pairs with high recall (0.899).

Main Results:

  • Successfully extracted a substantial number of drug-SE pairs from high-impact oncological literature.
  • Demonstrated that JCO-derived side effect knowledge is complementary to US Food and Drug Administration (FDA) drug labels.
  • Found positive correlations between targeted drug side effects, their gene targets, and disease indications.

Conclusions:

  • The developed automated process effectively extracts valuable drug-SE information from oncological articles.
  • The created database provides a unique resource for understanding targeted anticancer drug toxicities.
  • This knowledge base can facilitate computational models for predicting and managing drug-induced side effects.

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