Activity-Based Protein Profiling Shows Heterogeneous Signaling Adaptations to BRAF Inhibition

Ritin Sharma1, Inna Fedorenko1, Paige T Spence1

  • 1Molecular Oncology, ‡Tumor Biology, §Cutaneous Oncology, and ∥The Chemical Biology and Molecular Medicine Program, Moffitt Cancer Center & Research Institute , 12902 Magnolia Drive, Tampa, Florida 33612, United States.

Insights

BRAF inhibitor resistance in melanoma involves diverse signaling adaptations, not just genetic changes. Activity-based protein profiling reveals varied kinase activity in resistant cells, highlighting cytoskeletal and adhesion pathways.

Area of Science:

  • Oncology
  • Molecular Biology
  • Biochemistry

Background:

  • BRAF V600E mutant melanoma is treated with BRAF kinase inhibitors (BRAFi), but resistance develops.
  • Understanding resistance mechanisms beyond genetics is crucial for effective melanoma treatment.

Purpose of the Study:

  • To investigate global signaling adaptations mediating escape from BRAF inhibition using activity-based protein profiling (ABPP).
  • To identify kinases and enzyme classes contributing to BRAF inhibitor resistance in melanoma cell lines.

Main Methods:

  • Utilized ABPP with ATP-analogue probes to enrich kinases in isogenic BRAFi-naïve and resistant melanoma cell lines.
  • Analyzed kinase ATP probe uptake heterogeneity and performed Gene Ontology (GO) enrichment analysis.

Main Results:

  • BRAFi resistance showed heterogeneity in kinase ATP probe uptake, with some kinases (FAK1, SLK, TAOK2) increasing and others (KHS1, BRAF) decreasing.
  • GO analysis indicated BRAFi resistance is linked to enhanced uptake in cytoskeletal organization/adhesion proteins and decreased uptake in metabolic process proteins.

Conclusions:

  • BRAF inhibitor resistance in melanoma involves diverse signaling networks and phenotypic adaptations.
  • Significant redundancy exists within the signaling pathways of BRAF mutant melanoma cells, impacting treatment efficacy.

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