6533b7d5fe1ef96bd1265272

RESEARCH PRODUCT

Genomic instability induced by α-pinene in Chinese hamster cell line.

Maurizio MauroIrene CatanzaroFabio CaradonnaGiusi BarbataMarghereth SaveriniGiulia Sciandrello

subject

DNA damageHealth Toxicology and MutagenesisApoptosisToxicologymedicine.disease_causeChinese hamsterGenomic InstabilityColony-Forming Units AssayImmunoenzyme TechniquesMultinucleateCricetulusGenomic instability hamster cell lines a-pineneCricetinaeGeneticsmedicineAnimalsMitosisGenetics (clinical)Cells CulturedMicronuclei Chromosome-DefectiveBicyclic MonoterpenesChromosome AberrationsMicronucleus Testsbiologybiology.organism_classificationMolecular biologyComet assaySettore BIO/18 - GeneticaOxidative StressCell cultureMicronucleus testMonoterpenesComet AssayReactive Oxygen SpeciesOxidative stressDNA Damage

description

Here, we report the effects of exposure of mammalian cells to α-pinene, a bicyclic monoterpene used in insecticides, solvents and perfumes. Morphological analysis, performed in V79-Cl3 cells exposed for 1 h to increasing concentrations (25 up to 50 μM) of α-pinene, indicated a statistically significant increase in micronucleated and multinucleated cell frequencies; apoptotic cells were seen at 40 and 50 μM. This monoterpene caused genomic instability by interfering with mitotic process; in fact, 50% of cells (versus 19% of control cells) showed irregular mitosis with multipolar or incorrectly localised spindles. Cytogenetic analysis demonstrated high-frequency hypodiploid metaphases as well as endoreduplicated cells and chromosome breaks. Clastogenic damage was prevalent over aneuploidogenic damage as demonstrated by the higher proportion of kinetochore-negative micronuclei. Alkaline comet confirmed that monoterpene exposure caused DNA lesions in a concentration-dependent manner. This damage probably arose by increased reactive oxygen species (ROS) production. In order to assess the generation of ROS, the cells were incubated with CM-H(2)DCFDA and then analysed by flow cytometry. Results demonstrated an increase in fluorescence intensity after α-pinene treatment indicating increased oxidative stress. On the whole, these findings strongly suggest that α-pinene is able to compromise genome stability preferentially through mitotic alterations and to damage DNA through ROS production.

10.1093/mutage/ges005https://pubmed.ncbi.nlm.nih.gov/22379123