Fujian Provincial Key Laboratory for Coastal Ecology and Environmental Studies, College of the Environment & Ecology, Xiamen University, Xiamen 361102, China.
School of International Education, Beijing University of Chemical Technology, Beijing 102200, China.
Sci Total Environ. 2024 Sep 10;942:173585. doi: 10.1016/j.scitotenv.2024.173585. Epub 2024 May 27.
Marine ecosystem has been experiencing multiple stressors caused by anthropogenic activities, including ocean acidification (OA) and nickel (Ni) pollution. Here, we examined the individual/combined effects of OA (pCO 1000 μatm) and Ni (6 μg/L) exposure on a marine copepod Tigriopus japonicus for six generations (F1-F6), followed by one-generation recovery (F7) in clean seawater. Ni accumulation and several important phenotypic traits were measured in each generation. To explore within-generation response and transgenerational plasticity, we analyzed the transcriptome profile for the copepods of F6 and F7. The results showed that Ni exposure compromised the development, reproduction and survival of copepods during F1-F6, but its toxicity effects were alleviated by OA. Thus, under OA and Ni combined exposure, due to their antagonistic interaction, the disruption of Ca homeostasis, and the inhibition of calcium signaling pathway and oxytocin signaling pathway were not found. However, as a cost of acclimatization/adaption potential to long-term OA and Ni combined exposure, there was a loss of transcriptome plasticity during recovery, which limited the resilience of copepods to previously begin environments. Overall, our work fosters a comprehensive understanding of within- and transgenerational effects of climatic stressor and metal pollution on marine biota.
海洋生态系统一直受到人类活动引起的多种胁迫,包括海洋酸化(OA)和镍(Ni)污染。在这里,我们研究了 OA(pCO 1000 μatm)和 Ni(6μg/L)暴露对海洋桡足类动物 T. japonicus 的个体/联合效应,共进行了六代(F1-F6),然后在清洁海水中进行了一代恢复(F7)。在每一代中都测量了 Ni 的积累和几个重要的表型特征。为了探索代内响应和跨代可塑性,我们分析了 F6 和 F7 桡足类动物的转录组图谱。结果表明,Ni 暴露在 F1-F6 期间损害了桡足类动物的发育、繁殖和生存,但 OA 减轻了其毒性作用。因此,在 OA 和 Ni 联合暴露下,由于它们的拮抗相互作用,并未发现 Ca 动态平衡的破坏以及钙信号通路和催产素信号通路的抑制。然而,作为对长期 OA 和 Ni 联合暴露的适应潜力的代价,在恢复过程中丧失了转录组可塑性,这限制了桡足类动物对先前环境的恢复力。总的来说,我们的工作增进了对海洋生物群落在气候胁迫和金属污染下的代内和跨代效应的全面理解。