Competing Engagement of β-arrestin Isoforms Balances IGF1R/p53 Signaling and Controls Melanoma Cell Chemotherapeutic

Sonia Cismas1, Sylvya Pasca1, Caitrin Crudden1,2

  • 1Department of Oncology and Pathology, Karolinska Institutet and Karolinska University Hospital, Stockholm, Sweden.

PubMed

Insights

Altering β-arrestin (β-arr) balance in melanoma, specifically favoring β-arr2, enhances p53 activity and reduces IGF1R signaling. This strategy, combined with chemotherapy, limits melanoma growth and spread.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Research

Background:

  • Melanoma progression and therapeutic resistance are linked to impaired p53 tumor suppressor pathways.
  • Insulin-like growth factor type 1 receptor (IGF1R) drives melanoma cell transformation, proliferation, survival, and migration.
  • The β-arrestin (β-arr) system regulates p53 and IGF1R signaling via MDM2, influencing anti- and pro-tumorigenic activities.

Purpose of the Study:

  • To investigate if manipulating the β-arrestin system downstream of IGF1R can sensitize melanoma cells to chemotherapy.
  • To determine the therapeutic potential of biasing β-arrestin balance in melanoma treatment.

Main Methods:

  • Altering β-arrestin 1 (β-arr1) and β-arrestin 2 (β-arr2) expression in melanoma cells.
  • Assessing MDM2 translocation, IGF1R and p53 levels, cell proliferation, and survival.
  • Evaluating the synergistic effect of β-arr imbalance and dacarbazine in 3D spheroid and zebrafish models.
  • Analyzing β-arrestin imbalance in the TCGA-SKCM patient cohort.

Main Results:

  • Silencing β-arr1 and overexpressing β-arr2 promoted MDM2 translocation, decreased IGF1R, and increased p53, reducing melanoma cell proliferation and survival.
  • The -β-arr1/+β-arr2 imbalance synergized with dacarbazine to enhance melanoma cell toxicity.
  • This combination strategy limited melanoma growth, survival, and metastasis in preclinical models.
  • Clinical data confirmed β-arr1-/β-arr2+ imbalance as a vulnerability in metastatic melanoma.

Conclusions:

  • A β-arrestin system bias, favoring β-arr2, can limit pro-tumorigenic IGF1R activity while enhancing tumor-suppressive p53 activity.
  • This approach offers a strategy to overcome therapeutic resistance by targeting key melanoma signaling pathways.
  • Biasing β-arrestin balance represents a promising therapeutic avenue to improve patient outcomes in melanoma.

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