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Updated: May 22, 2026

Spatial and Temporal Control of Murine Melanoma Initiation from Mutant Melanocyte Stem Cells
Published on: June 7, 2019
Abrogation of BRAFV600E-induced senescence by PI3K pathway activation contributes to melanomagenesis
Liesbeth C W Vredeveld1, Patricia A Possik, Marjon A Smit
1Division of Molecular Oncology, The Netherlands Cancer Institute, 1066 CX Amsterdam, The Netherlands.
Abstract:
Human melanocytic nevi (moles) are benign lesions harboring activated oncogenes, including BRAF. Although this oncogene initially acts mitogenically, eventually, oncogene-induced senescence (OIS) ensues. Nevi can infrequently progress to melanomas, but the mechanistic relationship with OIS is unclear. We show here that PTEN depletion abrogates BRAF(V600E)-induced senescence in human fibroblasts and melanocytes. Correspondingly, in established murine BRAF(V600E)-driven nevi, acute shRNA-mediated depletion of PTEN prompted tumor progression. Furthermore, genetic analysis of laser-guided microdissected human contiguous nevus-melanoma specimens recurrently revealed identical mutations in BRAF or NRAS in adjacent benign and malignant melanocytes. The PI3K pathway was often activated through either decreased PTEN or increased AKT3 expression in melanomas relative to their adjacent nevi. Pharmacologic PI3K inhibition in melanoma cells suppressed proliferation and induced the senescence-associated tumor suppressor p15(INK4B). This treatment also eliminated subpopulations resistant to targeted BRAF(V600E) inhibition. Our findings suggest that a significant proportion of melanomas arise from nevi. Furthermore, these results demonstrate that PI3K pathway activation serves as a rate-limiting event in this setting, acting at least in part by abrogating OIS. The reactivation of senescence features and elimination of cells refractory to BRAF(V600E) inhibition by PI3K inhibition warrants further investigation into the therapeutic potential of simultaneously targeting these pathways in melanoma.
Insights
PTEN depletion prevents oncogene-induced senescence (OIS) in moles, promoting melanoma development. Inhibiting the PI3K pathway can reverse this, offering potential melanoma treatments.
Area of Science:
- Oncology
- Molecular Biology
- Dermatology
Background:
- Human melanocytic nevi (moles) harbor oncogenes like BRAF, which can lead to oncogene-induced senescence (OIS).
- The progression of nevi to melanoma and its relationship with OIS remain unclear.
- Understanding these mechanisms is crucial for melanoma treatment strategies.
Purpose of the Study:
- To investigate the role of PTEN in BRAF(V600E)-induced senescence.
- To explore the mechanistic link between nevi, OIS, and melanoma progression.
- To evaluate the therapeutic potential of targeting the PI3K pathway in melanoma.
Main Methods:
- PTEN depletion in human fibroblasts and melanocytes.
- BRAF(V600E)-driven murine nevi treated with shRNA-mediated PTEN depletion.
- Genetic analysis of human nevus-melanoma specimens.
- Pharmacologic PI3K inhibition in melanoma cells.
Main Results:
- PTEN depletion abrogated BRAF(V600E)-induced senescence.
- PTEN depletion in murine nevi promoted tumor progression.
- PI3K pathway activation (via PTEN loss or AKT3 gain) was observed in melanomas.
- PI3K inhibition suppressed melanoma proliferation, induced p15(INK4B), and eliminated BRAF(V600E) inhibitor-resistant cells.
Conclusions:
- Melanomas frequently arise from nevi, with PI3K pathway activation being a key event.
- PI3K pathway activation abrogates OIS, facilitating melanoma development.
- Targeting PI3K alongside BRAF may offer a novel therapeutic strategy for melanoma.
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