海洋酸化条件下海藻光合生理对Cu毒性的响应。

IF 4.1 2区 环境科学与生态学 Q1 MARINE & FRESHWATER BIOLOGY Aquatic Toxicology Pub Date : 2025-02-01 DOI:10.1016/j.aquatox.2024.107222
Tianpeng Xu , Zhouyue Lu , Cheng Chen , Yuxin Xie , Jing Ma , Juntian Xu
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引用次数: 0

摘要

海洋酸化会显著影响大型藻类的生理性能。虽然铜(Cu)是大型藻类的必需元素,并已被广泛研究,但海洋酸化和Cu对这些生物的相互作用仍然知之甚少。在本研究中,我们测量了在两个CO2水平(415 ppmv,低浓度;1000 ppmv,高浓度)。结果表明:在慢性毒性试验中,无论低CO2浓度还是高CO2浓度,铜浓度分别为0.001 μM、0.01 μM和0.1 μM时,乳藻幼鱼的生长均显著增加;在急性毒性试验中,在低CO2浓度下,Cu浓度升高对U. lactuca的生长速率、产量和光合速率有负面影响。相反,随着Cu浓度的增加,高CO2浓度可以增强U. lactuca的光合能力,而在Cu浓度为1.5 μM时,生长速率显著降低。此外,在1.5 μM Cu浓度下,随着丙二醛(MDA)含量的增加,过氧化物酶(POD)和核酮糖-1,5-二磷酸羧化酶/加氧酶(Rubisco)活性增加。然而,叶绿体类囊体的结构被Cu浓度升高所破坏。这些结果表明,低Cu浓度可促进乳藻的生长,而高Cu浓度可抑制藻类的生长,并且在急性毒性试验中,海洋酸化可能加剧Cu对乳藻的不良影响。
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Response of the photosynthetic physiology of Ulva lactuca to Cu toxicity under ocean acidification
Ocean acidification can significantly affect the physiological performance of macroalgae. While copper (Cu) is an essential element for macroalgae and has been extensively studied, the interactive effects of ocean acidification and Cu on these organisms remain less understood. In this study, we measured the photosynthetic characteristics of Ulva lactuca exposed to varying Cu concentrations at two CO2 levels (415 ppmv, low concentration; 1000 ppmv, high concentration). The results indicated that during chronic toxicity testing, the growth of juvenile U. lactuca significantly increased at Cu concentrations of 0.001 μM, 0.01 μM, and 0.1 μM regardless of low CO2 concentrations or high CO2 concentrations condition. In acute toxicity tests, elevated Cu concentrations negatively impacted the growth rate, yield, and photosynthetic rate of U. lactuca under low CO2 concentrations. Conversely, high CO2 concentrations enhanced the photosynthetic capacity of U. lactuca with increased Cu concentrations, while the growth rate significantly decreased at Cu concentration of 1.5 μM. Additionally, the activities of peroxidase (POD) and ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) increased, with an enhancement of malondialdehyde (MDA) content at 1.5 μM Cu under high CO2 conditions. However, the structure of the chloroplast thylakoid was disrupted by elevated Cu concentrations. These findings suggest that low Cu concentrations promote the growth of U. lactuca, whereas high Cu concentrations inhibit algal growth, and ocean acidification may exacerbate the adverse effects of Cu on U. lactuca in acute toxicity tests.
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来源期刊
Aquatic Toxicology
Aquatic Toxicology 环境科学-毒理学
CiteScore
7.10
自引率
4.40%
发文量
250
审稿时长
56 days
期刊介绍: Aquatic Toxicology publishes significant contributions that increase the understanding of the impact of harmful substances (including natural and synthetic chemicals) on aquatic organisms and ecosystems. Aquatic Toxicology considers both laboratory and field studies with a focus on marine/ freshwater environments. We strive to attract high quality original scientific papers, critical reviews and expert opinion papers in the following areas: Effects of harmful substances on molecular, cellular, sub-organismal, organismal, population, community, and ecosystem level; Toxic Mechanisms; Genetic disturbances, transgenerational effects, behavioral and adaptive responses; Impacts of harmful substances on structure, function of and services provided by aquatic ecosystems; Mixture toxicity assessment; Statistical approaches to predict exposure to and hazards of contaminants The journal also considers manuscripts in other areas, such as the development of innovative concepts, approaches, and methodologies, which promote the wider application of toxicological datasets to the protection of aquatic environments and inform ecological risk assessments and decision making by relevant authorities.
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