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Updated: Aug 8, 2026

Direct Reprogramming of Mouse Fibroblasts into Melanocytes
Published on: August 27, 2021
Growth regulatory proteins that repress differentiation markers in melanocytes also downregulate the transcription
1Department of Dermatology, Yale University School of Medicine, New Haven, Connecticut 06520-8059, USA.
Abstract:
Expression of basic fibroblast growth factor cDNA or dominantly acting oncogenes, e.g., E1A, in immortalized mouse melanocytes leads to autonomous growth in vitro, depigmentation, and in the case of the oncogenes, tumorigenesis. Because downregulation of pigmentation is a common event in human metastatic melanoma cells grown in culture, we determined the molecular basis of depigmentation in a mouse melanocyte model system. We tested the effect of E1A mutants deficient in their ability to neutralize several regulatory proteins and determined changes in melanogenic gene expression. We identified Microphthalmia as the affected, downregulated transcription factor in melanocytes rendered amelanotic by E1A, basic fibroblast growth factor, or the oncogenes ras or neu, and in an amelanotic cell variant of Cloudman S91 mouse melanoma. Against expectations, sequestration of p300, a transcriptional adaptor that mediates responses to cyclic adenosine monophosphate, was not required for the full transforming effects of E1A. Our results suggest that in addition to controlling tyrosinase (albino locus) and tyrosinase-related protein 1 (TR-P1/gp75/brown locus), both known to possess the DNA consensus site for binding the Microphthalmia protein, this transcription factor also controls other melanocyte-specific genes such as pink-eyed dilution and Pmel 17 (silver), but not tyrosinase-related protein 2 (slaty locus). Furthermore, these findings show that microphthalmia is downregulated not only by experimentally introduced dominantly acting oncogenes but also by the aberrant expression of basic fibroblast growth factor and by spontaneous tumorigenic transformation.
Insights
The Microphthalmia transcription factor is downregulated in depigmented melanocytes, impacting genes controlling pigmentation. This downregulation occurs with oncogene expression and basic fibroblast growth factor, linking it to melanoma development.
Area of Science:
- Molecular biology
- Cancer research
- Cell biology
Background:
- Oncogene expression in melanocytes causes depigmentation and tumors.
- Depigmentation is common in human metastatic melanoma.
- The molecular basis of this depigmentation in mouse models was investigated.
Purpose of the Study:
- To determine the molecular basis of depigmentation in a mouse melanocyte model.
- To identify the transcription factor affected by oncogenes and growth factors leading to depigmentation.
- To investigate the role of Microphthalmia in melanogenesis and transformation.
Main Methods:
- Expression of oncogenes and growth factors in immortalized mouse melanocytes.
- Analysis of melanogenic gene expression.
- Testing E1A mutants for effects on regulatory proteins.
Main Results:
- Microphthalmia (MITF) was identified as the downregulated transcription factor in depigmented melanocytes.
- MITF downregulation was observed with E1A, basic fibroblast growth factor, ras, neu, and in amelanotic melanoma variants.
- MITF controls tyrosinase, TR-P1, pink-eyed dilution, and Pmel 17, but not TRP-2.
- p300 sequestration was not required for E1A's transforming effects.
Conclusions:
- Microphthalmia is a key transcription factor downregulated during melanocyte transformation and depigmentation.
- MITF downregulation is induced by oncogenes, basic fibroblast growth factor, and spontaneous transformation.
- This study reveals MITF's broader role in regulating melanocyte-specific genes beyond known targets.
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