Transcriptional repression of IFNβ1 by ATF2 confers melanoma resistance to therapy

E Lau1, J Sedy1, C Sander2

  • 1Cancer Center, Sanford-Burnham Medical Research Institute, La Jolla, CA, USA.

Oncogene
|March 3, 2015
PubMed

Insights

Melanoma resistance to cancer treatments is a major hurdle. This study reveals how protein kinase C-epsilon (PKCɛ) and activating transcription factor-2 (ATF2) repress interferon-β1 (IFNβ1), hindering chemotherapy effectiveness in advanced melanoma.

Area of Science:

  • Oncology
  • Molecular Biology
  • Immunology

Background:

  • Melanoma resistance to therapy necessitates understanding underlying mechanisms.
  • Activating transcription factor-2 (ATF2) is implicated in melanoma development and treatment resistance, but its precise role is unclear.

Purpose of the Study:

  • To elucidate the protein kinase C-ɛ (PKCɛ)- and ATF2-mediated mechanism driving melanoma's therapeutic resistance.
  • To investigate the role of interferon-β1 (IFNβ1) signaling in chemoresistance.

Main Methods:

  • Investigated the transcriptional regulation of IFNβ1 by PKCɛ and ATF2 in melanoma cells.
  • Analyzed ATF2 localization (nuclear vs. cytosolic) and IFNβ1 expression in melanoma patient samples.
  • Correlated molecular findings with patient response to biochemotherapy and IFN-α2a treatments.

Main Results:

  • PKCɛ and ATF2 repress IFNβ1 expression, inhibiting type-I IFN signaling induced by chemotherapy.
  • Early-stage melanomas with low PKCɛ show restored IFNβ1 expression and cell death upon chemotherapy.
  • Late-stage melanomas with high PKCɛ exhibit resistance, with nuclear ATF2 and low IFNβ1 correlating with poor patient response.

Conclusions:

  • Identified a PKCɛ-ATF2 regulatory axis that represses IFNβ1, contributing to melanoma therapeutic resistance.
  • IFNβ1-dependent, cell-autonomous mechanisms are crucial in melanoma chemoresistance.
  • ATF2 localization and IFNβ1 expression levels can predict patient response to melanoma treatments.

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