The impact of pharmacokinetic gene profiles across human cancers

Michael T Zimmermann1,2, Terry M Therneau1, Jean-Pierre A Kocher3

  • 1Division of Biomedical Statistics and Informatics, Department of Health Sciences Research, College of Medicine, Mayo Clinic, 200 First Street SW, Rochester, MN, 55905, USA.

BMC Cancer
|May 23, 2018
PubMed
Abstract

Insights

A new model predicts cancer therapy effectiveness using genomic data. This approach identifies high-risk patients and may improve personalized cancer treatment strategies.

Area of Science:

  • Genomics
  • Precision Medicine
  • Cancer Biology

Background:

  • Individualized Medicine (IM) aims to match the right drug to the right patient at the right time.
  • Genomic information integration promises enhanced treatment precision and improved patient outcomes.
  • Systematic evaluation of tumor genomics, including drug transport and metabolism, is crucial but underexplored.

Purpose of the Study:

  • To develop a rule-based model for classifying cancer therapies as effective or ineffective.
  • To assess the impact of somatic pharmacokinetic (PK) alterations on patient survival.
  • To integrate genomic data for improved personalized therapeutic strategies.

Main Methods:

  • A rule-based Therapy Efficacy model was developed using The Cancer Genome Atlas PanCancer dataset (n=2858).
  • The model analyzed each patient's drug target and pharmacokinetic (PK) gene expression profile.
  • Therapy efficacy predictions were correlated with patient survival data (overall and event-free).

Main Results:

  • The model identified 5% of patients as high-risk for cancer-related mortality.
  • High-risk patients exhibited later stage and higher grade cancers.
  • A significant association was found between model predictions and poorer overall survival (HR=1.47, p<0.001), driven by drug export and metabolism genes.

Conclusions:

  • Somatic PK alterations significantly impact patient survival and should be integrated into genomic profile interpretation.
  • Despite data resolution limitations, the approach highlights the importance of PK in personalized medicine.
  • This methodology can guide the prospective design of personalized cancer therapeutic strategies.

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