Literature DB >> 33374934

Ancient Sturgeons Possess Effective DNA Repair Mechanisms: Influence of Model Genotoxicants on Embryo Development of Sterlet, Acipenser ruthenus.

Ievgeniia Gazo1, Roman Franěk1, Radek Šindelka2, Ievgen Lebeda1, Sahana Shivaramu1, Martin Pšenička1, Christoph Steinbach1.   

Abstract

DNA damage caused by exogenous or endogenous factors is a common challenge for developing fish embryos. DNA damage repair (DDR) pathways help organisms minimize adverse effects of DNA alterations. In terms of DNA repair mechanisms, sturgeons represent a particularly interesting model due to their exceptional genome plasticity. Sterlet (Acipenser ruthenus) is a relatively small species of sturgeon. The goal of this study was to assess the sensitivity of sterlet embryos to model genotoxicants (camptothecin, etoposide, and benzo[a]pyrene), and to assess DDR responses. We assessed the effects of genotoxicants on embryo survival, hatching rate, DNA fragmentation, gene expression, and phosphorylation of H2AX and ATM kinase. Exposure of sterlet embryos to 1 µM benzo[a]pyrene induced low levels of DNA damage accompanied by ATM phosphorylation and xpc gene expression. Conversely, 20 µM etoposide exposure induced DNA damage without activation of known DDR pathways. Effects of 10 nM camptothecin on embryo development were stage-specific, with early stages, before gastrulation, being most sensitive. Overall, this study provides foundational information for future investigation of sterlet DDR pathways.

Entities:  

Keywords:  ATM; DNA damage repair; H2AX; embryo; genotoxicity; sturgeon

Year:  2020        PMID: 33374934     DOI: 10.3390/ijms22010006

Source DB:  PubMed          Journal:  Int J Mol Sci        ISSN: 1422-0067            Impact factor:   5.923


  1 in total

1.  Transcriptome and Proteome Analyses Reveal Stage-Specific DNA Damage Response in Embryos of Sturgeon (Acipenser ruthenus).

Authors:  Ievgeniia Gazo; Ravindra Naraine; Ievgen Lebeda; Aleš Tomčala; Mariola Dietrich; Roman Franěk; Martin Pšenička; Radek Šindelka
Journal:  Int J Mol Sci       Date:  2022-06-07       Impact factor: 6.208

  1 in total

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