Catalase T-Deficient Fission Yeast Meiocytes Show Resistance to Ionizing Radiation.
Razan MuhtadiAlexander LorenzSamantha J MpauloChristian SiebenwirthHarry ScherthanPublished in: Antioxidants (Basel, Switzerland) (2020)
Environmental stress, reactive oxygen species (ROS), or ionizing radiation (IR) can induce adverse effects in organisms and their cells, including mutations and premature aging. DNA damage and its faulty repair can lead to cell death or promote cancer through the accumulation of mutations. Misrepair in germ cells is particularly dangerous as it may lead to alterations in developmental programs and genetic disease in the offspring. DNA damage pathways and radical defense mechanisms mediate resistance to genotoxic stresses. Here, we investigated, in the fission yeast Schizosaccharomyces pombe, the role of the H2O2-detoxifying enzyme cytosolic catalase T (Ctt1) and the Fe2+/Mn2+ symporter Pcl1 in protecting meiotic chromosome dynamics and gamete formation from radicals generated by ROS and IR. We found that wild-type and pcl1-deficient cells respond similarly to X ray doses of up to 300 Gy, while ctt1∆ meiocytes showed a moderate sensitivity to IR but a hypersensitivity to hydrogen peroxide with cells dying at >0.4 mM H2O2. Meiocytes deficient for pcl1, on the other hand, showed a resistance to hydrogen peroxide similar to that of the wild type, surviving doses >40 mM. In all, it appears that in the absence of the main H2O2-detoxifying pathway S. pombe meiocytes are able to survive significant doses of IR-induced radicals.
Keyphrases
- hydrogen peroxide
- dna damage
- induced apoptosis
- cell cycle arrest
- cell death
- wild type
- reactive oxygen species
- oxidative stress
- nitric oxide
- endoplasmic reticulum stress
- dna repair
- public health
- palliative care
- gene expression
- young adults
- skeletal muscle
- climate change
- high fat diet
- papillary thyroid
- saccharomyces cerevisiae
- endothelial cells
- insulin resistance
- genome wide
- gram negative
- childhood cancer
- ionic liquid
- high speed
- life cycle