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Updated: Jun 17, 2026

Spatial and Temporal Control of Murine Melanoma Initiation from Mutant Melanocyte Stem Cells
Published on: June 7, 2019
PTEN-restoration abrogates brain colonisation and perivascular niche invasion by melanoma cells
Sarah Wang1, Caroline P Riedstra1, Yu Zhang1
1Department of Microbiology, Immunology, and Cancer Biology, The University of Virginia, Charlottesville, VA, 22908, USA.
Background:
Melanoma brain metastases (MBM) continue to be a significant clinical problem with limited treatment options. Highly invasive melanoma cells migrate along the vasculature and perivascular cells may contribute to residual disease and recurrence. PTEN loss and hyperactivation of AKT occur in MBM; however, a role for PTEN/AKT in perivascular invasion has not been described.
Methods:
We used in vivo intracranial injections of murine melanoma and bulk RNA sequencing of melanoma cells co-cultured with brain endothelial cells (brECs) to investigate brain colonisation and perivascular invasion.
Results:
We found that PTEN-null melanoma cells were highly efficient at colonising the perivascular niche relative to PTEN-expressing counterparts. PTEN re-expression (PTEN-RE) in melanoma cells significantly reduced brain colonisation and migration along the vasculature. We hypothesised this phenotype was mediated through vascular-induced TGFβ secretion, which drives AKT phosphorylation. Disabling TGFβ signalling in melanoma cells reduced colonisation and perivascular invasion; however, the introduction of constitutively active myristolated-AKT (myrAKT) restored overall tumour size but not perivascular invasion.
Conclusions:
PTEN loss facilitates perivascular brain colonisation and invasion of melanoma. TGFβ-AKT signalling partially contributes to this phenotype, but further studies are needed to determine the complementary mechanisms that enable melanoma cells to both survive and spread along the brain vasculature.
Insights
PTEN loss in melanoma cells enhances brain colonization and perivascular invasion. While TGFβ-AKT signaling plays a partial role, other mechanisms are involved in melanoma brain metastasis spread.
Area of Science:
- Oncology
- Neuroscience
- Cell Biology
Background:
- Melanoma brain metastases (MBM) present a significant clinical challenge with limited therapeutic strategies.
- Perivascular invasion by melanoma cells is implicated in residual disease and recurrence.
- PTEN loss and AKT hyperactivation are observed in MBM, but their role in perivascular invasion is unclear.
Purpose of the Study:
- To investigate the role of PTEN/AKT signaling in melanoma brain colonization and perivascular invasion.
- To elucidate the mechanisms by which melanoma cells invade the brain vasculature.
Main Methods:
- Utilized in vivo intracranial injections of murine melanoma models.
- Employed bulk RNA sequencing of melanoma cells co-cultured with brain endothelial cells (brECs).
Main Results:
- PTEN-null melanoma cells exhibited superior colonization of the perivascular niche compared to PTEN-expressing cells.
- PTEN re-expression significantly reduced melanoma brain colonization and vascular migration.
- TGFβ signaling partially mediated invasion, but myristolated-AKT restored tumor size, not perivascular invasion.
Conclusions:
- PTEN loss is a key facilitator of perivascular brain colonization and melanoma invasion.
- TGFβ-AKT signaling partially contributes to melanoma perivascular invasion.
- Further research is required to identify additional mechanisms governing melanoma survival and spread along brain vasculature.
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