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Preparation of Peripheral Blood Mononuclear Cell Pellets and Plasma from a Single Blood Draw at Clinical Trial Sites for Biomarker Analysis
Published on: March 20, 2021
Genotoxicity of pemetrexed in human peripheral blood lymphocytes
Erman Salih Istifli1, Mehmet Topaktaş
1Faculty of Sciences and Letter, Department of Biology Adana, Cukurova University, Adana, Turkey, ermansalih@gmail.com.
Abstract:
Pemetrexed (PMX) is an antineoplastic antifolate used in the treatment of non-small cell lung cancer, mesothelioma and several types of neoplasms. Its toxicity in tumor cells has been linked with the potent inhibition of thymidylate synthase, dihydrofolate reductase and glycinamide ribonucleotide formyl transferase, and subsequent depletion of both purine and pyrimidine nucleotides. However, cytogenetic toxicity of PMX in non-diseased cells has not been adequately studied; despite the increasing data on the DNA-damaging potential of antineoplastic agents on normal cells. In the present study, the genotoxic potential of PMX was evaluated in peripheral blood lymphocytes obtained from healthy human subjects using chromosome aberration (CA), sister chromatid exchange (SCE) and micronucleus (MN) assays as the cytogenetic damage markers. Human peripheral blood lymphocytes were exposed to four different concentrations (25, 50, 75 and 100 μg/mL) of PMX for 24- and 48-h treatment periods. PMX significantly increased the formation of CA in 24-h treatment, but not in 48-h treatment. PMX did not increase the mean SCE frequency in 24- and 48-h treatment periods; however, there was a striking increase (although not statistically significant, p > 0.05) in the number of SCEs at 25 μg/mL (24- and 48-h treatment) and 50 μg/mL (24-h treatment) due to an increase of SCE at the single-cell level. Interestingly, PMX did not induce MN formation in either 24- or 48-h treatment periods. PMX strongly decreased the mitotic index (MI), proliferation index (PI) and nuclear division index (NDI) in 24- and 48-h treatment periods. Our results suggest that PMX has a potent cytotoxic effect against human peripheral blood lymphocytes at concentrations which are reached in vivo in the blood plasma.
Insights
Pemetrexed (PMX) can damage healthy human cells, increasing chromosome aberrations and decreasing cell division. This study evaluated PMX
Area of Science:
- Cytogenetics
- Molecular Biology
- Pharmacology
Background:
- Pemetrexed (PMX) is an antifolate chemotherapy drug used for cancers like non-small cell lung cancer.
- PMX's toxicity mechanism involves inhibiting enzymes crucial for nucleotide synthesis.
- The genotoxic effects of PMX on healthy cells require further investigation.
Purpose of the Study:
- To assess the genotoxic potential of Pemetrexed (PMX) in human peripheral blood lymphocytes.
- To evaluate cytogenetic damage markers including chromosome aberrations (CA), sister chromatid exchange (SCE), and micronucleus (MN) formation.
- To determine the cytotoxic effects of PMX on lymphocyte proliferation.
Main Methods:
- Human peripheral blood lymphocytes were exposed to PMX at concentrations of 25, 50, 75, and 100 μg/mL for 24 and 48 hours.
- Chromosome aberration (CA), sister chromatid exchange (SCE), and micronucleus (MN) assays were performed.
- Mitotic index (MI), proliferation index (PI), and nuclear division index (NDI) were analyzed to assess cytotoxicity.
Main Results:
- PMX significantly increased chromosome aberrations (CA) after 24-hour exposure.
- PMX did not significantly increase sister chromatid exchange (SCE) or micronucleus (MN) formation.
- PMX markedly reduced mitotic and proliferation indices, indicating significant cytotoxicity.
Conclusions:
- Pemetrexed (PMX) exhibits genotoxic effects on human lymphocytes, primarily through increased chromosome aberrations.
- PMX demonstrates significant cytotoxic effects on healthy lymphocytes at concentrations achievable in vivo.
- Further research is warranted to understand the long-term implications of PMX-induced genotoxicity in non-cancerous cells.
