IndGOterm: a qualitative method for the identification of individually dysregulated GO terms in cancer

Jiashuai Zhang1, Huiting Xiao1, Kai Song1

  • 1Department of Systems Biology, College of Bioinformatics Science and Technology, Harbin Medical University, Harbin 150086, China.

Briefings in Bioinformatics
|February 13, 2022
PubMed

Insights

This study introduces IndGOterm, a novel method for individual pathway analysis that effectively handles batch effects in cancer patient data. IndGOterm enhances the identification of cancer-related pathways and patient heterogeneity for personalized treatment strategies.

Area of Science:

  • Bioinformatics
  • Computational Biology
  • Genomics

Background:

  • Individual pathway analysis is crucial for understanding cancer patient heterogeneity and guiding personalized therapy.
  • Batch effects from diverse data technologies limit the application of many existing individual pathway analysis methods.
  • Relative expression ordering (REO) based methods show promise in mitigating batch effects.

Purpose of the Study:

  • To propose an individual qualitative Gene Ontology (GO) term analysis method, IndGOterm, based on REO.
  • To evaluate IndGOterm's performance against established single-sample enrichment analysis methods like ssGSEA and GSVA.
  • To demonstrate IndGOterm's utility in capturing cancer-relevant biological information and revealing patient-specific characteristics.

Main Methods:

  • Developed IndGOterm, an individual qualitative GO term analysis method utilizing gene REO.
  • Compared IndGOterm with ssGSEA and GSVA in terms of batch effect insensitivity.
  • Applied IndGOterm to survival and drug response data to assess its ability to identify cancer-associated terms.

Main Results:

  • IndGOterm effectively ignores batch effects, outperforming ssGSEA and GSVA in this regard.
  • IndGOterm identified more cancer-related terms compared to other methods in survival and drug response analyses.
  • The method revealed distinct dysregulation patterns within homologous patients, highlighting cancer's heterogeneity.

Conclusions:

  • IndGOterm is a robust tool for individual pathway analysis, insensitive to batch effects.
  • It enhances the capture of clinically relevant biological information from cancer patient data.
  • IndGOterm facilitates the discovery of intrinsic cancer characteristics and patient-specific dysregulation models.

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