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Updated: Apr 18, 2026

Spatial and Temporal Control of Murine Melanoma Initiation from Mutant Melanocyte Stem Cells
Published on: June 7, 2019
MITF drives endolysosomal biogenesis and potentiates Wnt signaling in melanoma cells
Diego Ploper1, Vincent F Taelman1, Lidia Robert2
1Howard Hughes Medical Institute and Department of Biological Chemistry.
Abstract:
Canonical Wnt signaling plays an important role in development and disease, regulating transcription of target genes and stabilizing many proteins phosphorylated by glycogen synthase kinase 3 (GSK3). We observed that the MiT family of transcription factors, which includes the melanoma oncogene MITF (micropthalmia-associated transcription factor) and the lysosomal master regulator TFEB, had the highest phylogenetic conservation of three consecutive putative GSK3 phosphorylation sites in animal proteomes. This finding prompted us to examine the relationship between MITF, endolysosomal biogenesis, and Wnt signaling. Here we report that MITF expression levels correlated with the expression of a large subset of lysosomal genes in melanoma cell lines. MITF expression in the tetracycline-inducible C32 melanoma model caused a marked increase in vesicular structures, and increased expression of late endosomal proteins, such as Rab7, LAMP1, and CD63. These late endosomes were not functional lysosomes as they were less active in proteolysis, yet were able to concentrate Axin1, phospho-LRP6, phospho-β-catenin, and GSK3 in the presence of Wnt ligands. This relocalization significantly enhanced Wnt signaling by increasing the number of multivesicular bodies into which the Wnt signalosome/destruction complex becomes localized upon Wnt signaling. We also show that the MITF protein was stabilized by Wnt signaling, through the novel C-terminal GSK3 phosphorylations identified here. MITF stabilization caused an increase in multivesicular body biosynthesis, which in turn increased Wnt signaling, generating a positive-feedback loop that may function during the proliferative stages of melanoma. The results underscore the importance of misregulated endolysosomal biogenesis in Wnt signaling and cancer.
Insights
The micropthalmia-associated transcription factor (MITF) stabilizes Wnt signaling by increasing multivesicular bodies, creating a feedback loop that promotes melanoma proliferation. This highlights endolysosomal biogenesis
Area of Science:
- Molecular Biology
- Cell Biology
- Oncology
Background:
- Canonical Wnt signaling is crucial for development and disease.
- Glycogen synthase kinase 3 (GSK3) phosphorylates and stabilizes proteins involved in Wnt signaling.
- The MiT family of transcription factors, including MITF, possess conserved GSK3 phosphorylation sites.
Purpose of the Study:
- To investigate the relationship between MITF, endolysosomal biogenesis, and Wnt signaling.
- To elucidate the role of MITF in melanoma.
- To identify novel mechanisms of Wnt signaling regulation.
Main Methods:
- Analysis of MITF and lysosomal gene expression in melanoma cell lines.
- Inducible expression of MITF in C32 melanoma cells.
- Immunofluorescence microscopy to visualize vesicular structures and protein localization.
- Biochemical assays to assess proteolysis and Wnt signaling components.
Main Results:
- MITF expression correlated with lysosomal gene expression and increased vesicular structures.
- MITF expression led to increased late endosomal proteins (Rab7, LAMP1, CD63).
- These endosomes concentrated Wnt signaling components (Axin1, phospho-LRP6, phospho-β-catenin, GSK3), enhancing Wnt signaling.
- MITF protein was stabilized by Wnt signaling via novel GSK3 phosphorylations, forming a positive-feedback loop.
Conclusions:
- Misregulated endolysosomal biogenesis is important in Wnt signaling and cancer.
- MITF stabilization by Wnt signaling creates a positive-feedback loop enhancing Wnt signaling in melanoma.
- This feedback loop may contribute to melanoma cell proliferation.
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