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Updated: Oct 29, 2025

Spatial and Temporal Control of Murine Melanoma Initiation from Mutant Melanocyte Stem Cells
Published on: June 7, 2019
Plasma proteome alterations by MAPK inhibitors in BRAFV600-mutated metastatic cutaneous melanoma
Haris Babačić1, Hanna Eriksson2, Maria Pernemalm1
1Department of Oncology-Pathology, Science for Life Laboratory, Karolinska Institute, Stockholm, Sweden.
Abstract:
Approximately half of metastatic cutaneous melanomas (CM) harbor a mutation in the BRAF protooncogene, upregulating the mitogen-activated protein kinase (MAPK)-pathway. The development of inhibitors targeting the MAPK pathway (MAPKi), i.e., BRAF- and MEK-inhibitors (BRAFi and MEKi), have substantially improved the survival in BRAFV600E/K-mutated stage IV metastatic CM. However, most patients develop resistance to treatment and no predictive biomarkers exist in practice. This study aimed at discovering plasma proteome changes during treatment MAPKi in patients with metastatic (stage IV) CM. Matched plasma samples before (pre) and during treatment (trm) from 23 patients with stage IV CM, treated with BRAF-inhibitors (BRAFi) alone or BRAF- and MEK- inhibitors combined (BRAFi and MEKi), were collected and analyzed with targeted proteomics by proximity extension assays. Additionally, plasma from 9 patients treated with BRAFi and MEKi was analyzed with in-depth high-resolution isoelectric focusing liquid-chromatography mass-spectrometry proteomics. Alterations of plasma proteins involved in granzyme and interferon gamma pathways were detected in patients treated with BRAFi, and cell adhesion-, neutrophil degranulation-, and proteolysis pathways in patients treated with BRAFi and MEKi. Several proteins were associated with progression-free survival after MAPKi treatment. We show that the majority of the altered plasma proteins were traceable to BRAFV600E-mutant metastatic CM tissue at mRNA level in 154 patients from the TCGA, further strengthening their involvement in tumoral response to treatment. This wide screen of plasma proteins unravels proteins that may serve as predictive and/or prognostic biomarkers of MAPKi treatment, opening a window of opportunity for plasma biomarker discovery in MAPKi-treatment of BRAFV600-mutant metastatic CM.
Insights
This study identified plasma protein changes during targeted therapy for metastatic melanoma. These changes may help predict treatment response and survival in patients with BRAF-mutated melanoma.
Area of Science:
- Oncology
- Proteomics
- Biomarker Discovery
Background:
- Metastatic cutaneous melanoma (CM) often has BRAF mutations, activating the MAPK pathway.
- Targeted therapies like BRAF and MEK inhibitors (MAPKi) improve survival but face resistance.
- Predictive biomarkers for MAPKi treatment are currently lacking.
Purpose of the Study:
- To discover plasma proteome alterations during MAPKi treatment in stage IV CM.
- To identify potential plasma biomarkers for predicting treatment response and prognosis.
Main Methods:
- Targeted proteomics using proximity extension assays on plasma samples from 23 stage IV CM patients (pre- and during-treatment).
- In-depth proteomics analysis of plasma from 9 patients treated with BRAFi and MEKi.
- Correlation of plasma protein changes with progression-free survival and tumor tissue mRNA levels (TCGA cohort).
Main Results:
- Detected distinct plasma protein pathway alterations: granzyme and interferon gamma with BRAFi; cell adhesion, neutrophil degranulation, and proteolysis with BRAFi and MEKi.
- Identified several proteins associated with progression-free survival.
- Confirmed that most altered plasma proteins originate from BRAF-mutant melanoma tissue.
Conclusions:
- Plasma proteome profiling reveals potential predictive and prognostic biomarkers for MAPKi therapy in BRAF-mutant metastatic CM.
- This study opens avenues for plasma-based biomarker discovery in melanoma treatment.
- Understanding proteome changes can guide personalized treatment strategies.
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