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Limitations of Explainability for Established Prognostic Biomarkers of Prostate Cancer

  • Kalifa Manjang
  • , Olli Yli-Harja
  • , Matthias Dehmer
  • , Frank Emmert-Streib*
  • *Corresponding author for this work
  • Tampere University
  • Institute for Systems Biology
  • Swiss Distance University of Applied Sciences
  • Private University for Health Sciences, Medical Informatics and Technology
  • Nankai University

Research output: Contribution to journalArticlepeer-review

Abstract

High-throughput technologies do not only provide novel means for basic biological research but also for clinical applications in hospitals. For instance, the usage of gene expression profiles as prognostic biomarkers for predicting cancer progression has found widespread interest. Aside from predicting the progression of patients, it is generally believed that such prognostic biomarkers also provide valuable information about disease mechanisms and the underlying molecular processes that are causal for a disorder. However, the latter assumption has been challenged. In this paper, we study this problem for prostate cancer. Specifically, we investigate a large number of previously published prognostic signatures of prostate cancer based on gene expression profiles and show that none of these can provide unique information about the underlying disease etiology of prostate cancer. Hence, our analysis reveals that none of the studied signatures has a sensible biological meaning. Overall, this shows that all studied prognostic signatures are merely black-box models allowing sensible predictions of prostate cancer outcome but are not capable of providing causal explanations to enhance the understanding of prostate cancer.

Original languageEnglish
Article number649429
JournalFrontiers in Genetics
Volume12
DOIs
Publication statusPublished - 22 Jul 2021
Externally publishedYes

Keywords

  • biomarkers
  • biostatistics
  • computational biology
  • data science
  • prognostic biomarkers
  • prostate cancer
  • survival analysis

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