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首页> 外文期刊>Environmental research >Transgenerational exposure to ocean acidification induces biochemical distress in a keystone amphipod species (Gammarus locusta)
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Transgenerational exposure to ocean acidification induces biochemical distress in a keystone amphipod species (Gammarus locusta)

机译:跨代暴露于海洋酸化会引起梯形两栖动物物种(伽玛鲁斯蝗)的生化危机

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摘要

Atmospheric carbon dioxide (CO2) levels are increasing at the fastest rate ever recorded, causing higher CO2 dissolution in the ocean, leading to a process known as ocean acidification (OA). Unless anthropogenic CO2 emissions are reduced, they are expected to reach similar to 900 ppm by the century's end, resulting in a 0.13-0.42 drop in the seawater pH levels. Since the transgenerational effects of high CO2 in marine organisms are still poorly understood at lower levels of biological organization (namely at the biochemical level), here we reared a key ecological relevant marine amphipod, Gammarus locusta, under control and high CO2 conditions for two generations. We measured several stress-related biochemical endpoints: i) oxidative damage [lipid peroxidation (LPO) and DNA damage]; ii) protein repair and removal mechanisms [heat shock proteins (HSPs) and ubiquitin (Ub)]; as well as iii) antioxidant responses [superoxide dismutase (SOD), catalase (CAT), glutathione peroxidase (GPx) and glutathione s-transferase (GST)] and total antioxidant capacity (TAC). The present results support the premise that exposure to high CO2 is expected to decrease survival rates in this species and cause within- and transgenerational oxidative damage. More specifically, the predicted upsurge of reactive oxygen and nitrogen species seemed to overwhelm the stimulated amphipod antioxidant machinery, which proved insufficient in circumventing protein damage within the parents. Additionally, negative effects of OA are potentially being inherited by the offspring, since the oxidative stress imposed in the parent's proteome appears to be restricting DNA repair mechanisms efficiency within the offspring's. Thus, we argue that a transgenerational exposure of G. locusta could further increase vulnerability to OA and may endanger the fitness and sustainability of natural populations.
机译:大气中的二氧化碳(CO2)水平以有史以来最快的速度增加,导致海洋中的CO2溶解度更高,从而导致了被称为海洋酸化(OA)的过程。除非减少人为的二氧化碳排放量,否则到本世纪末,它们的排放量有望达到900 ppm,导致海水pH值下降0.13-0.42。由于在较低的生物组织水平(即在生化水平上)仍然难以理解高二氧化碳在海洋生物中的传代作用,因此在这里我们在控制和高二氧化碳条件下饲养了两代重要的生态相关海洋两栖动物,即伽马鲁斯蝗。 。我们测量了几个与压力有关的生化终点:i)氧化损伤[脂质过氧化(LPO)和DNA损伤]; ii)蛋白质修复和去除机制[热激蛋白(HSP)和泛素(Ub)];以及iii)抗氧化剂反应[超氧化物歧化酶(SOD),过氧化氢酶(CAT),谷胱甘肽过氧化物酶(GPx)和谷胱甘肽s-转移酶(GST)]和总抗氧化剂容量(TAC)。目前的结果支持了这样一个前提,即暴露于高浓度的CO2会降低该物种的生存率,并引起代内和代间氧化损伤。更具体地说,活性氧和氮物种的预计增长似乎使受刺激的两栖动物的抗氧化剂机制不堪重负,这证明不足以规避父母体内的蛋白质损伤。此外,OA的负面影响可能会被后代遗传,因为施加在亲本蛋白质组中的氧化应激似乎限制了后代内部DNA修复机制的效率。因此,我们认为,青海蝗的跨代暴露可能会进一步增加对OA的脆弱性,并可能危害自然种群的适应性和可持续性。

著录项

  • 来源
    《Environmental research 》 |2019年第3期| 168-177| 共10页
  • 作者单位

    Univ Lisbon, MARE Marine & Environm Sci Ctr, Lab Mariam Guia, Fac Ciencias, Ave Nossa Senhora Cabo 939, P-2750374 Cascais, Portugal|Univ Nova Lisboa, Fac Ciencias & Tecnol, Dept Quim, UCIBIO,REQUIMTE, P-2829516 Quinta Da Torre, Caparica, Portugal;

    Univ Lisbon, MARE Marine & Environm Sci Ctr, Lab Mariam Guia, Fac Ciencias, Ave Nossa Senhora Cabo 939, P-2750374 Cascais, Portugal;

    Univ Lisbon, MARE Marine & Environm Sci Ctr, Lab Mariam Guia, Fac Ciencias, Ave Nossa Senhora Cabo 939, P-2750374 Cascais, Portugal;

    Univ Lisbon, MARE Marine & Environm Sci Ctr, Lab Mariam Guia, Fac Ciencias, Ave Nossa Senhora Cabo 939, P-2750374 Cascais, Portugal;

    Univ Nova Lisboa, Fac Ciencias & Tecnol, Dept Quim, UCIBIO,REQUIMTE, P-2829516 Quinta Da Torre, Caparica, Portugal;

    Univ Lisbon, MARE Marine & Environm Sci Ctr, Lab Mariam Guia, Fac Ciencias, Ave Nossa Senhora Cabo 939, P-2750374 Cascais, Portugal;

    Univ Lisbon, MARE Marine & Environm Sci Ctr, Lab Mariam Guia, Fac Ciencias, Ave Nossa Senhora Cabo 939, P-2750374 Cascais, Portugal;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Ocean acidification; Transgenerational; Oxidative stress; Oxidative damage; Gammarus locusta;

    机译:海洋酸化;遗传转化;氧化胁迫;氧化损伤;γ;

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