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Spatial and Temporal Control of Murine Melanoma Initiation from Mutant Melanocyte Stem Cells
Published on: June 7, 2019
Mithramycin A and Mithralog EC-8042 Inhibit SETDB1 Expression and Its Oncogenic Activity in Malignant Melanoma
Aniello Federico1,2, Tamara Steinfass1,2, Lionel Larribère1,2
1Skin Cancer Unit, German Cancer Research Center (DKFZ), Heidelberg, 69120 Baden Württemberg, Germany.
Abstract:
Malignant melanoma is the most deadly skin cancer, associated with rising incidence and mortality rates. Most of the patients with melanoma, treated with current targeted therapies, develop a drug resistance, causing tumor relapse. The attainment of a better understanding of novel cancer-promoting molecular mechanisms driving melanoma progression is essential for the development of more effective targeted therapeutic approaches. Recent studies, including the research previously conducted in our laboratory, reported that the histone methyltransferase SETDB1 contributes to melanoma pathogenesis. In this follow-up study, we further elucidated the role of SETDB1 in melanoma, showing that SETDB1 modulated relevant transcriptomic effects in melanoma, in particular, as activator of cancer-related secreted (CRS) factors and as repressor of melanocyte-lineage differentiation (MLD) and metabolic enzymes. Next, we investigated the effects of SETDB1 inhibition via compounds belonging to the mithramycin family, mithramycin A and mithramycin analog (mithralog) EC-8042: melanoma cells showed strong sensitivity to these drugs, which effectively suppressed the expression of SETDB1 and induced changes at the transcriptomic, morphological, and functional level. Moreover, SETDB1 inhibitors enhanced the efficacy of mitogen-activated protein kinase (MAPK) inhibitor-based therapies against melanoma. Taken together, this work highlights the key regulatory role of SETDB1 in melanoma and supports the development of SETDB1-targeting therapeutic strategies for the treatment of melanoma patients.
Insights
Histone methyltransferase SETDB1 drives melanoma progression by activating cancer-related genes and repressing differentiation. Inhibiting SETDB1 with mithramycin analogs shows promise for melanoma treatment.
Area of Science:
- Oncology
- Molecular Biology
- Dermatology
Background:
- Malignant melanoma is a deadly skin cancer with increasing incidence and mortality.
- Drug resistance to current targeted therapies leads to melanoma relapse.
- Understanding melanoma's molecular drivers is crucial for developing effective treatments.
Purpose of the Study:
- To further elucidate the role of histone methyltransferase SETDB1 in melanoma pathogenesis.
- To investigate the impact of SETDB1 inhibition on melanoma progression.
- To evaluate SETDB1 inhibitors as a therapeutic strategy for melanoma.
Main Methods:
- Investigated SETDB1's transcriptomic modulation of cancer-related secreted factors and melanocyte differentiation markers.
- Assessed the effects of SETDB1 inhibition using mithramycin A and EC-8042 in melanoma cells.
- Evaluated the combination therapy of SETDB1 inhibitors with MAPK inhibitors.
Main Results:
- SETDB1 acts as an activator of cancer-related secreted factors and a repressor of melanocyte differentiation and metabolic enzymes in melanoma.
- Mithramycin A and EC-8042 effectively suppressed SETDB1 expression and induced transcriptomic, morphological, and functional changes in melanoma cells.
- SETDB1 inhibitors enhanced the efficacy of MAPK inhibitor-based therapies against melanoma.
Conclusions:
- SETDB1 plays a key regulatory role in melanoma progression.
- Targeting SETDB1 with compounds like mithramycin analogs is a promising therapeutic strategy for melanoma.
- Combination therapies involving SETDB1 inhibitors may overcome resistance to existing melanoma treatments.
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