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Updated: Feb 22, 2026

Spatial and Temporal Control of Murine Melanoma Initiation from Mutant Melanocyte Stem Cells
Published on: June 7, 2019
Rescue of cell cycle progression in BRAFV600E inhibitor-resistant human melanoma by a chromatin modifier
Antoni X Toress-Collado1, Ramin Nazarian2,3, Ali R Jazirehi1,3
11 Division of Surgical Oncology, Department of Surgery, University of California, Los Angeles, Los Angeles, CA, USA.
Abstract:
The BRAFV600E-specific inhibitor vemurafenib blocks mitogen-activated protein kinase pathway and induces cell cycle arrest at G0/G1 phase leading to apoptosis of melanomas. To gain an understanding of the dynamics of cell cycle regulation during vemurafenib therapy, we analyzed several vemurafenib-resistant human melanoma sublines derived from BRAFV600E harboring vemurafenib-sensitive parental lines. Vemurafenib provoked G0/G1 phase arrest in parental but not in vemurafenib-resistant sublines. We hypothesized that refractoriness of vemurafenib-resistant sublines to vemurafenib-mediated cell cycle inhibition can be partially rescued by the chromatin modifier suberoylanilide hydroxamic acid. Suberoylanilide hydroxamic acid promoted G2/M arrest at expense of S phase irrespective of vemurafenib sensitivity. In parental lines, combination of suberoylanilide hydroxamic acid and vemurafenib induced both G0/G1 arrest and apoptosis, whereas in vemurafenib-resistant sublines combination induced G0/G1 as well as G2/M arrest resulting in dramatic cytostasis. Vemurafenib-resistant sublines exhibited extracellular signal-regulated protein kinases 1 and 2 but not AKT and hyperphosphorylation. Gene expression profiling revealed mitogen-activated protein kinase hyperactivation and deregulations of cyclins and cyclin-dependent kinases in vemurafenib-resistant sublines, all of which were reversed by suberoylanilide hydroxamic acid; changes that may explain the cytostatic effects of suberoylanilide hydroxamic acid. These results suggest that unresponsiveness of vemurafenib-resistant sublines to the biological effects of vemurafenib may be amenable by suberoylanilide hydroxamic acid. These in vitro results, while require further investigation, may provide rational biological basis for combination therapy in the management of vemurafenib-resistant melanoma.
Insights
Suberoylanilide hydroxamic acid may restore vemurafenib sensitivity in resistant melanoma by reversing MAPK pathway hyperactivation and inducing cell cycle arrest. This combination therapy shows promise for treating vemurafenib-resistant melanoma.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Vemurafenib, a BRAF inhibitor, targets the MAPK pathway in melanoma.
- Melanoma resistance to vemurafenib limits its therapeutic efficacy.
- Understanding cell cycle regulation is crucial for overcoming vemurafenib resistance.
Purpose of the Study:
- To investigate the role of suberoylanilide hydroxamic acid (SAHA) in overcoming vemurafenib resistance in melanoma.
- To analyze cell cycle dynamics and molecular changes in vemurafenib-resistant melanoma sublines.
- To explore the potential of combination therapy with SAHA and vemurafenib.
Main Methods:
- Analysis of vemurafenib-resistant and sensitive human melanoma sublines.
- Treatment with vemurafenib, SAHA, and combination therapy.
- Cell cycle analysis (G0/G1, G2/M, S phase arrest).
- Gene expression profiling and Western blot analysis for MAPK pathway components, cyclins, and CDKs.
Main Results:
- Vemurafenib induced G0/G1 arrest in sensitive cells but not resistant cells.
- SAHA induced G2/M arrest independently of vemurafenib sensitivity.
- Combination therapy induced G0/G1 and G2/M arrest, leading to cytostasis in resistant cells.
- Resistant cells showed MAPK hyperactivation and deregulated cyclins/CDKs, reversed by SAHA.
Conclusions:
- SAHA can partially restore vemurafenib sensitivity in resistant melanoma.
- Combination therapy with SAHA and vemurafenib demonstrates potential for treating vemurafenib-resistant melanoma.
- SAHA's ability to reverse MAPK hyperactivation and regulate cell cycle provides a rationale for its use in combination therapy.
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