首页> 外文期刊>The Science of the Total Environment >Genetic, epigenetic, and developmental toxicity of Chironomus riparius raised in metal-contaminated field sediments: A multi-generational study with arsenic as a second challenge
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Genetic, epigenetic, and developmental toxicity of Chironomus riparius raised in metal-contaminated field sediments: A multi-generational study with arsenic as a second challenge

机译:金属污染田地沉积物中培养的骑族,表观遗传和发育毒性:砷作为第二次挑战的多代研究

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Ecotoxidty tests conducted under well-controlled lab conditions often do not reflect the real environmental conditions. To this end, we designed an ecotoxicity test using an aquatic midge, Chironomus riparius, raised in metal-contaminated field sediments (MCFS), which reflect the real environmental conditions, for five consecutive generations (F0-F4) followed by a toxic response to arsenic exposure (as a second challenge). The toxic responses (i.e. DNA damage, DNA methylation, stress response gene expression, and mortality) were compared to those organisms reared in lab sediments (IS). Under the MCFS condition, increased adult emergence was observed for the second and third generations (Fl and 12), while a decreased tendency was evident thereafter (F3 and 14) compared to that of F0. When comparing C. riparius raised in MCFS or LS exposed to arsenic, increased sensitivity (declined survival) was observed in the larvae from F2. However, that tendency was not present in F4 of the MCFS midges, indicating a possible physiological adaptation. Increased DNA damage was observed in the MCFS-exposed organisms (F0,F2, and F4) compared to the those exposed to IS, particularly at F0. Arsenic exposure induced hypermethylation at F0 and, in contrast, hypomethylation at the later generations (F2, F4) in the MCFS-exposed organisms. Global DNA methylation results were supported by the expression of genes involved in enzymatic methylation. Moreover, alterations in oxidative stress related to gene expression showed that significant oxidative stress and perturbation of glutathione reserves occurred under the MCFS and the subsequent arsenic exposure conditions. Overall, our results suggest that multigenerational rearing under MCFS conditions resulted in physiological adaptation of C. riparius to metal exposure, specifically at later generations, which in turn modulated its response to arsenic stress through possible genetic and epigenetic mechanisms. (C) 2019 Elsevier B.V. All rights reserved.
机译:在受控实验室条件下进行的生态毒性测试通常不会反映真实的环境条件。为此,我们设计了使用水生蚊,在金属污染的领域沉积物(MCF)中提升的生态毒性试验,该沉积物(MCF)反映了真实环境条件,连续几代(F0-F4),然后是毒性反应砷曝光(作为第二个挑战)。将毒响应(即DNA损伤,DNA甲基化,应激反应基因表达和死亡率)与实验室沉积物(是)中的那些生物进行比较。在MCFS条件下,对于第二代和第三世代(FL和12),观察到增加的成年出苗,而此后,与F0相比,此后的趋势降低(F3和14)。比较在暴露于砷的MCF或LS中的riparius升高时,在F2的幼虫中观察到增加的敏感性(下降存活率)。然而,MCF在MCFS中间的F4中不存在这种趋势,表明可能的生理适应。与暴露于暴露于的那些,特别是在F0的那些中,在MCFS暴露的生物体(F0,F2和F4)中观察到增加的DNA损伤增加。砷暴露在F0处的高甲基化,相反,在MCF暴露的生物体中的后代(F2,F4)处的低甲基化。全局DNA甲基化结果得到了酶促甲基化的基因的表达。此外,与基因表达相关的氧化应激的改变表明,在MCF和随后的砷暴露条件下发生显着的氧化应激和谷胱甘肽储备的扰动。总体而言,我们的结果表明,MCFS条件下的多粒饲养导致C. Riparius对金属暴露的生理适应,特别是在后代,通过可能的遗传和表观遗传机制调节其对砷胁迫的反应。 (c)2019 Elsevier B.v.保留所有权利。

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