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Epigenetic, transcriptional and phenotypic responses in Daphnia magna exposed to low-level ionizing radiation. | LitMetric

Epigenetic, transcriptional and phenotypic responses in Daphnia magna exposed to low-level ionizing radiation.

Environ Res

Norwegian Institute for Water Research (NIVA), Gaustadalléen 21, N-0349, Oslo, Norway; Centre for Environmental Radioactivity (CERAD), Norwegian University of Life Sciences (NMBU), Post box 5003, N-1432 Ås, Norway; Norwegian University of Life Sciences (NMBU), Faculty of Environmental Sciences and Natural Resource Management (MINA), P.O. Box 5003, N-1432 Ås, Norway.

Published: November 2020

AI Article Synopsis

  • Ionizing radiation can cause oxidative stress, DNA damage, and epigenetic changes in aquatic organisms, which can either help them adapt or lead to negative effects.
  • A study exposed adult Daphnia magna to different levels of Co gamma radiation and analyzed various biological responses at molecular, cellular, and organismal levels.
  • Findings revealed increased global DNA methylation and changes in gene expression and reactive oxygen species over time, but no significant impact on overall fecundity, leading to a proposed model for understanding how epigenetic mechanisms respond to low-dose radiation stress.

Article Abstract

Ionizing radiation is known to induce oxidative stress and DNA damage as well as epigenetic effects in aquatic organisms. Epigenetic changes can be part of the adaptive responses to protect organisms from radiation-induced damage, or act as drivers of toxicity pathways leading to adverse effects. To investigate the potential roles of epigenetic mechanisms in low-dose ionizing radiation-induced stress responses, an ecologically relevant crustacean, adult Daphnia magna were chronically exposed to low and medium level external Co gamma radiation ranging from 0.4, 1, 4, 10, and 40 mGy/h for seven days. Biological effects at the molecular (global DNA methylation, histone modification, gene expression), cellular (reactive oxygen species formation), tissue/organ (ovary, gut and epidermal histology) and organismal (fecundity) levels were investigated using a suite of effect assessment tools. The results showed an increase in global DNA methylation associated with loci-specific alterations of histone H3K9 methylation and acetylation, and downregulation of genes involved in DNA methylation, one-carbon metabolism, antioxidant defense, DNA repair, apoptosis, calcium signaling and endocrine regulation of development and reproduction. Temporal changes of reactive oxygen species (ROS) formation were also observed with an apparent transition from ROS suppression to induction from 2 to 7 days after gamma exposure. The cumulative fecundity, however, was not significantly changed by the gamma exposure. On the basis of the new experimental evidence and existing knowledge, a hypothetical model was proposed to provide in-depth mechanistic understanding of the roles of epigenetic mechanisms in low dose ionizing radiation induced stress responses in D. magna.

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Source
http://dx.doi.org/10.1016/j.envres.2020.109930DOI Listing

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