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The Slow Cycling Phenotype: A Growing Problem for Treatment Resistance in Melanoma
Antonio Ahn1, Aniruddha Chatterjee1,2, Michael R Eccles3,2
1Department of Pathology, Dunedin School of Medicine, University of Otago, Dunedin, New Zealand.
Abstract:
Treatment resistance in metastatic melanoma is a longstanding issue. Current targeted therapy regimes in melanoma largely target the proliferating cancer population, leaving slow-cycling cancer cells undamaged. Consequently, slow-cycling cells are enriched upon drug therapy and can remain in the body for years until acquiring proliferative potential that triggers cancer relapse. Here we overview the molecular mechanisms of slow-cycling cells that underlie treatment resistance in melanoma. Three main areas of molecular reprogramming are discussed that mediate slow cycling and treatment resistance. First, a low microphthalmia-associated transcription factor (MITF) dedifferentiated state activates various signaling pathways. This includes WNT5A, EGFR, as well as other signaling activators, such as AXL and NF-κB. Second, the chromatin-remodeling factor Jumonji/ARID domain-containing protein 1B (JARID1B, KDM5B) orchestrates and maintains slow cycling and treatment resistance in a small subpopulation of melanoma cells. Finally, a shift in metabolic state toward oxidative phosphorylation has been demonstrated to regulate treatment resistance in slow-cycling cells. Elucidation of the underlying processes of slow cycling and its utilization by melanoma cells may reveal new vulnerable characteristics as therapeutic targets. Moreover, combining current therapies with targeting slow-cycling subpopulations of melanoma cells may allow for more durable and greater treatment responses. Mol Cancer Ther; 16(6); 1002-9. ©2017 AACR.
Insights
Slow-cycling melanoma cells evade targeted therapies, leading to relapse. Understanding their molecular mechanisms, including low MITF and altered metabolism, is key to developing durable treatment strategies.
Area of Science:
- Oncology
- Cancer Biology
- Melanoma Research
Background:
- Metastatic melanoma treatment resistance is a significant clinical challenge.
- Current therapies target proliferating cells, sparing slow-cycling melanoma cells.
- Slow-cycling cells persist and can lead to cancer relapse.
Purpose of the Study:
- To review the molecular mechanisms driving slow cycling in melanoma.
- To identify how slow cycling contributes to treatment resistance.
- To explore therapeutic strategies targeting slow-cycling melanoma cells.
Main Methods:
- Review of molecular mechanisms underlying slow cycling in melanoma.
- Discussion of signaling pathways, chromatin remodeling, and metabolic shifts.
- Analysis of the role of microphthalmia-associated transcription factor (MITF) and JARID1B (KDM5B).
Main Results:
- Low MITF levels promote dedifferentiation and activate pathways like WNT5A, EGFR, AXL, and NF-κB.
- JARID1B (KDM5B) maintains the slow-cycling state and treatment resistance.
- A metabolic shift towards oxidative phosphorylation contributes to resistance in slow-cycling cells.
Conclusions:
- Targeting slow-cycling melanoma cell mechanisms offers new therapeutic opportunities.
- Combining therapies against proliferating and slow-cycling cells may improve treatment durability.
- Further research into these mechanisms can reveal novel drug targets for melanoma.
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