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Updated: Mar 2, 2026

Direct Reprogramming of Mouse Fibroblasts into Melanocytes
Published on: August 27, 2021
The AP-1 transcription factor FOSL1 causes melanocyte reprogramming and transformation
K Maurus1,2, A Hufnagel1, F Geiger1
1Department of Physiological Chemistry, University of Würzburg, Würzburg, Germany.
Abstract:
The MAPK pathway is activated in the majority of melanomas and is the target of therapeutic approaches. Under normal conditions, it initiates the so-called immediate early response, which encompasses the transient transcription of several genes belonging to the AP-1 transcription factor family. Under pathological conditions, such as continuous MAPK pathway overactivation due to oncogenic alterations occurring in melanoma, these genes are constitutively expressed. The consequences of a permanent expression of these genes are largely unknown. Here, we show that FOSL1 is the main immediate early AP-1 member induced by melanoma oncogenes. We first examined its role in established melanoma cells. We found that FOSL1 is involved in melanoma cell migration as well as cell proliferation and anoikis-independent growth, which is mediated by the gene product of its target gene HMGA1, encoding a multipotent chromatin modifier. As FOSL1 expression is increased in patient melanoma samples compared to nevi, we investigated the effect of enhanced FOSL1 expression on melanocytes. Intriguingly, we found that FOSL1 acts oncogenic and transforms melanocytes, enabling subcutaneous tumor growth in vivo. During the process of transformation, FOSL1 reprogrammed the melanocytes and downregulated MITF in a HMGA1-dependent manner. At the same time, AXL was upregulated, leading to a shift in the MITF/AXL balance. Furthermore, FOSL1 re-enforced pro-tumorigenic transcription factors MYC, E2F3 and AP-1. Together, this led to the enhancement of several growth-promoting processes, such as ribosome biogenesis, cellular detachment and pyrimidine metabolism. Overall, we demonstrate that FOSL1 is a novel reprogramming factor for melanocytes with potent tumor transformation potential.
Insights
FOSL1, a key AP-1 factor, drives melanoma cell growth and transformation. It reprograms melanocytes, downregulating MITF and upregulating AXL, leading to tumor formation and enhanced pro-tumorigenic processes.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- The MAPK pathway is frequently activated in melanoma, driving cancer progression.
- Constitutive expression of immediate early genes, like AP-1 family members, occurs under pathological conditions.
- The role of permanent immediate early gene expression in melanoma remains largely unknown.
Purpose of the Study:
- To investigate the role of FOSL1, a key AP-1 member, in melanoma.
- To determine the oncogenic potential of FOSL1 in melanocytes.
- To elucidate the molecular mechanisms underlying FOSL1-mediated melanocyte transformation.
Main Methods:
- Analysis of FOSL1 expression in melanoma cells and patient samples.
- Functional studies of FOSL1 in melanoma cell migration, proliferation, and anoikis-independent growth.
- In vivo studies assessing the tumor-forming capacity of FOSL1-expressing melanocytes.
- Investigation of FOSL1-induced changes in gene expression, including MITF, AXL, MYC, E2F3, and AP-1.
Main Results:
- FOSL1 is the primary immediate early AP-1 member induced by melanoma oncogenes.
- FOSL1 promotes melanoma cell migration, proliferation, and anoikis-independent growth via HMGA1.
- Enhanced FOSL1 expression transforms melanocytes, causing subcutaneous tumor growth in vivo.
- FOSL1 downregulates MITF and upregulates AXL, shifting the MITF/AXL balance, and reinforces pro-tumorigenic transcription factors.
Conclusions:
- FOSL1 is a potent oncogene in melanoma, driving tumor progression and transformation.
- FOSL1 acts as a novel reprogramming factor for melanocytes, with significant tumor transformation potential.
- The FOSL1-mediated reprogramming involves downregulation of MITF, upregulation of AXL, and reinforcement of pro-tumorigenic transcription factors, promoting key growth processes.
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