HER2+ Cancer Cell Dependence on PI3K vs. MAPK Signaling Axes Is Determined by Expression of EGFR, ERBB3 and CDKN1B

Daniel C Kirouac1, Jinyan Du1, Johanna Lahdenranta1

  • 1Discovery, Merrimack Pharmaceuticals, Cambridge, Massachusetts, United States of America.

Insights

This study identifies three key proteins (EGFR, ERBB3, and p27) that predict whether HER2+ cancers depend on PI3K/AKT or MAPK/ERK pathways. This discovery can guide targeted anti-cancer treatments and predict drug resistance.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Signaling Pathways

Background:

  • Oncogenes drive cancer growth through pathways like PI3K and MAPK.
  • Understanding pathway dependence is crucial for designing effective anti-cancer therapies.
  • HER2-amplified (HER2+) cancers exhibit molecular diversity, impacting treatment strategies.

Purpose of the Study:

  • To investigate pathway dependencies (PI3K/AKT vs. MAPK/ERK) in HER2+ cancers.
  • To identify biomarkers that predict these pathway dependencies.
  • To evaluate the predictive power of these biomarkers against current clinical metrics.

Main Methods:

  • Utilized a panel of 18 HER2+ cell lines representing diverse indications.
  • Quantified PI3K and MAPK pathway dependencies using AKT and MEK inhibitors, with and without heregulin (NRG1).
  • Assessed protein expression of EGFR, ERBB3 (HER3), and p27 (CDKN1B) as potential biomarkers.

Main Results:

  • A combination of EGFR, ERBB3, and p27 protein levels accurately predicted PI3K/AKT versus MAPK/ERK pathway dependence.
  • This three-protein biomarker panel outperformed traditional metrics like phospho-AKT/ERK expression and PI3K pathway mutations.
  • Biomarker expression patterns varied by cancer indication (e.g., high ERBB3/CDKN1B in breast cancer, high EGFR in others).
  • Predictive accuracy was validated using external datasets (Project Achilles, GDSC).

Conclusions:

  • A minimal set of three protein biomarkers (EGFR, ERBB3, p27) can predict drug sensitivity and resistance mechanisms in HER2+ cancers.
  • These biomarkers offer a more accurate approach to guiding treatment decisions compared to current genetic markers.
  • Cancer signaling and growth are context-dependent, even with a single oncogenic driver.

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