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Spatial and Temporal Control of Murine Melanoma Initiation from Mutant Melanocyte Stem Cells
Published on: June 7, 2019
AKT2 Loss Impairs BRAF-Mutant Melanoma Metastasis
Siobhan K McRee1,2, Abraham L Bayer3,4, Jodie Pietruska2
1Program in Genetics, Graduate School of Biomedical Sciences, Tufts University, Boston, MA 02111, USA.
Abstract:
Despite recent advances in treatment, melanoma remains the deadliest form of skin cancer due to its highly metastatic nature. Melanomas harboring oncogenic BRAFV600E mutations combined with PTEN loss exhibit unrestrained PI3K/AKT signaling and increased invasiveness. However, the contribution of different AKT isoforms to melanoma initiation, progression, and metastasis has not been comprehensively explored, and questions remain about whether individual isoforms play distinct or redundant roles in each step. We investigate the contribution of individual AKT isoforms to melanoma initiation using a novel mouse model of AKT isoform-specific loss in a murine melanoma model, and we investigate tumor progression, maintenance, and metastasis among a panel of human metastatic melanoma cell lines using AKT isoform-specific knockdown studies. We elucidate that AKT2 is dispensable for primary tumor formation but promotes migration and invasion in vitro and metastatic seeding in vivo, whereas AKT1 is uniquely important for melanoma initiation and cell proliferation. We propose a mechanism whereby the inhibition of AKT2 impairs glycolysis and reduces an EMT-related gene expression signature in PTEN-null BRAF-mutant human melanoma cells to limit metastatic spread. Our data suggest that the elucidation of AKT2-specific functions in metastasis might inform therapeutic strategies to improve treatment options for melanoma patients.
Insights
Melanoma metastasis is driven by AKT2, not AKT1, which is crucial for initial tumor growth. Targeting AKT2 could offer new melanoma treatment strategies by inhibiting spread.
Area of Science:
- Oncology
- Molecular Biology
- Dermatology
Background:
- Melanoma is a deadly skin cancer with high metastatic potential, often linked to BRAF mutations and PTEN loss.
- Unrestrained PI3K/AKT signaling contributes to melanoma invasiveness, but the roles of individual AKT isoforms are unclear.
- Understanding isoform-specific functions is crucial for developing targeted melanoma therapies.
Purpose of the Study:
- To investigate the distinct roles of AKT isoforms (AKT1, AKT2, AKT3) in melanoma initiation, progression, and metastasis.
- To explore therapeutic strategies targeting specific AKT isoforms for melanoma treatment.
Main Methods:
- Utilized a novel mouse model for AKT isoform-specific loss in melanoma.
- Employed AKT isoform-specific knockdown in human metastatic melanoma cell lines.
- Analyzed tumor initiation, proliferation, migration, invasion, and metastatic seeding.
Main Results:
- AKT1 is essential for melanoma initiation and cell proliferation.
- AKT2 is dispensable for primary tumor formation but critical for migration, invasion, and metastatic seeding.
- Inhibition of AKT2 impairs glycolysis and reduces epithelial-mesenchymal transition (EMT) gene expression in melanoma cells.
Conclusions:
- AKT1 and AKT2 play distinct, non-redundant roles in melanoma development and metastasis.
- AKT2 is a key driver of melanoma cell invasion and metastasis.
- Targeting AKT2 may represent a viable therapeutic strategy to limit melanoma spread.
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