Melanocyte transformation requires complete loss of all pocket protein function via a mechanism that mitigates the

I D Tonks1, P Mukhopadhyay1, W A Schroder1

  • 1Cell and molecular Biology Department, QIMR Berghofer Medical Research Institute, Herston, Queensland, Australia.

Oncogene
|February 14, 2017
PubMed

Insights

Deregulation of all three pocket proteins (PPs) is crucial for melanoma development, challenging the focus on the p16INK4A/CDK4/pRb pathway. Loss of all PPs facilitates melanoma, especially with Trp53 co-deletion.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Deregulation of p16INK4A is a key event in melanoma.
  • The p16INK4A/CDK-cyclin/pRb pathway is considered the primary mechanism for p16INK4A loss effects.
  • Other pocket proteins (PPs), p107 and p130, also regulate cell cycle progression.

Purpose of the Study:

  • To investigate the role of all three pocket proteins (pRb, p107, p130) in melanoma development.
  • To determine if the loss of all PPs, not just pRb, is sufficient for melanoma formation.
  • To explore the interaction between PP loss and Trp53 in tumorigenesis.

Main Methods:

  • Generation of melanocyte-specific knockout mice for combinations of pRb, p107, and p130.
  • Co-deletion of Trp53 in PP knockout mice.
  • Exome sequencing of developed melanomas.
  • Analysis of mutation signatures.

Main Results:

  • Loss of single or double PPs did not lead to melanoma.
  • Melanocyte-specific loss of all three PPs facilitated melanoma development.
  • Trp53 co-deletion accelerated melanoma onset and increased penetrance.
  • Melanomas developed without Ras or Braf mutations, indicating MAPK-independent pathways.
  • A unique mutation signature with excess T>G substitutions was observed.

Conclusions:

  • Deregulation of all three pocket proteins is critical for melanoma neoplastic progression.
  • The p16INK4A/CDK4/pRb pathway is not the sole determinant; all PPs are potential targets of CDK-cyclins in melanoma.
  • Melanoma can develop independently of MAPK pathway activation.

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