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Updated: May 22, 2026

Spatial and Temporal Control of Murine Melanoma Initiation from Mutant Melanocyte Stem Cells
Published on: June 7, 2019
Molecular mechanism implicated in Pemetrexed-induced apoptosis in human melanoma cells
Aitziber Buqué1, Jangi Sh Muhialdin, Alberto Muñoz
1Medical Oncology Department, Hospital Universitario Cruces, Barakaldo, Bizkaia, Spain.
Background:
Metastatic melanoma is a lethal skin cancer and its incidence is rising every year. It represents a challenge for oncologist, as the current treatment options are non-curative in the majority of cases; therefore, the effort to find and/or develop novel compounds is mandatory. Pemetrexed (Alimta®, MTA) is a multitarget antifolate that inhibits folate-dependent enzymes: thymidylate synthase, dihydrofolate reductase and glycinamide ribonucleotide formyltransferase, required for de novo synthesis of nucleotides for DNA replication. It is currently used in the treatment of mesothelioma and non-small cell lung cancer (NSCLC), and has shown clinical activity in other tumors such as breast, colorectal, bladder, cervical, gastric and pancreatic cancer. However, its effect in human melanoma has not been studied yet.
Results:
In the current work we studied the effect of MTA on four human melanoma cell lines A375, Hs294T, HT144 and MeWo and in two NSCLC cell lines H1299 and Calu-3. We have found that MTA induces DNA damage, S-phase cell cycle arrest, and caspase- dependent and -independent apoptosis. We show that an increment of the intracellular reactive oxygen species (ROS) and p53 is required for MTA-induced cytotoxicity by utilizing N-Acetyl-L-Cysteine (NAC) to blockage of ROS and p53-defective H1299 NSCLC cell line. Pretreatment of melanoma cells with NAC significantly decreased the DNA damage, p53 up-regulation and cytotoxic effect of MTA. MTA was able to induce p53 expression leading to up-regulation of p53-dependent genes Mcl-1 and PIDD, followed by a postranscriptional regulation of Mcl-1 improving apoptosis.
Conclusions:
We found that MTA induced DNA damage and mitochondrial-mediated apoptosis in human melanoma cells in vitro and that the associated apoptosis was both caspase-dependent and -independent and p53-mediated. Our data suggest that MTA may be of therapeutic relevance for the future treatment of human malignant melanoma.
Insights
Pemetrexed (MTA) induces DNA damage and apoptosis in human melanoma cells by increasing reactive oxygen species and p53. This suggests MTA may be a potential therapeutic for malignant melanoma.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Metastatic melanoma is an aggressive cancer with limited curative treatment options.
- Pemetrexed (MTA) is a multitarget antifolate used for mesothelioma and non-small cell lung cancer (NSCLC).
- The efficacy of MTA in human melanoma has not been previously investigated.
Purpose of the Study:
- To investigate the effect of Pemetrexed (MTA) on human melanoma cell lines.
- To elucidate the mechanisms underlying MTA-induced cytotoxicity in melanoma.
- To assess the potential of MTA as a therapeutic agent for malignant melanoma.
Main Methods:
- Treatment of human melanoma and NSCLC cell lines with MTA.
- Assessment of DNA damage, cell cycle arrest, and apoptosis.
- Evaluation of reactive oxygen species (ROS) and p53 involvement using N-Acetyl-L-Cysteine (NAC).
Main Results:
- MTA induced DNA damage, S-phase cell cycle arrest, and both caspase-dependent and -independent apoptosis in melanoma cells.
- Increased intracellular ROS and p53 were essential for MTA-induced cytotoxicity.
- NAC pretreatment significantly reduced MTA's DNA damage, p53 up-regulation, and cytotoxic effects.
- MTA upregulated p53, leading to increased Mcl-1 and PIDD expression, enhancing apoptosis.
Conclusions:
- MTA induces DNA damage and mitochondrial-mediated apoptosis in human melanoma cells.
- Apoptosis induced by MTA is mediated by caspase-dependent, caspase-independent, and p53 pathways.
- MTA demonstrates therapeutic potential for the future treatment of malignant melanoma.
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