The molecular evolution of acquired resistance to targeted EGFR blockade in colorectal cancers

Luis A Diaz1, Richard T Williams, Jian Wu

  • 1Ludwig Center for Cancer Genetics and Therapeutics, Howard Hughes Medical Institute at Johns Hopkins Kimmel Cancer Center, Baltimore, Maryland 21287, USA. ldiaz1@jhmi.edu

Nature
|June 23, 2012
PubMed

Insights

Rare KRAS mutations pre-exist in colorectal tumors and emerge during EGFR blockade therapy. Detecting these KRAS mutations in blood predicts acquired resistance to anti-EGFR antibodies.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Colorectal tumors initially sensitive to EGFR blockade often develop resistance.
  • Mechanisms of acquired resistance to anti-EGFR antibodies are poorly understood.
  • Unlike small-molecule inhibitors, resistance to antibody-based EGFR blockade lacks clear genetic targets.

Purpose of the Study:

  • To investigate the hypothesis that pre-existing KRAS mutations drive acquired resistance to EGFR blockade.
  • To determine if mutant KRAS DNA can be detected in the circulation of patients treated with anti-EGFR antibodies.
  • To explore the clinical utility of non-invasive detection of KRAS mutations for predicting resistance.

Main Methods:

  • Analysis of circulating tumor DNA (ctDNA) for KRAS mutations in patients receiving panitumumab.
  • Detection of KRAS mutations in serum using molecular techniques.
  • Mathematical modeling to assess the timing and clonal expansion of mutations.

Main Results:

  • Mutant KRAS DNA was detected in the serum of 38% of patients with initially KRAS wild-type tumors.
  • Multiple distinct KRAS mutations were identified in some patients.
  • Mutation emergence typically occurred between 5-6 months of treatment, suggesting pre-existing subclones.

Conclusions:

  • Emergence of KRAS mutations is a key mediator of acquired resistance to EGFR blockade in colorectal cancer.
  • Non-invasive detection of KRAS mutations in serum is feasible and can predict resistance.
  • These findings explain the reproducible development of resistance to targeted therapies.

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