Response of Juvenile Saccharina japonica to the Combined Stressors of Elevated pCO 2 and Excess Copper

Coastal macroalgae may be subjected to global and local environmental stressors, such as ocean acidification and heavy-metal pollution. We investigated the growth, photosynthetic characteristics, and biochemical compositions of juvenile sporophytes of Saccharina japonica cultivated at two pCO 2 leve...

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Bibliographic Details
Published in:Plants
Main Authors: Wenze Zhang, Lianghua He, Jiangqi Pan, Yuhong Zhou, Ruxiang Ge, Sufang Li, Yunyun Shi, Xinhua Chen, Yaoyao Chu
Format: Article in Journal/Newspaper
Language:English
Published: MDPI AG 2023
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Online Access:https://doi.org/10.3390/plants12051140
https://doaj.org/article/3001b19b680a41d6818454bccf43faa3
Description
Summary:Coastal macroalgae may be subjected to global and local environmental stressors, such as ocean acidification and heavy-metal pollution. We investigated the growth, photosynthetic characteristics, and biochemical compositions of juvenile sporophytes of Saccharina japonica cultivated at two pCO 2 levels (400 and 1000 ppmv) and four copper concentrations (natural seawater, control; 0.2 μM, low level; 0.5 μM, medium level; and 1 μM, high level) to better understand how macroalgae respond to ongoing environmental changes. The results showed that the responses of juvenile S. japonica to copper concentrations depended on the pCO 2 level. Under the 400 ppmv condition, medium and high copper concentrations significantly decreased the relative growth rate (RGR) and non-photochemical quenching (NPQ) but increased the relative electron transfer rate (rETR) and chlorophyll a (Chl a ), chlorophyll c (Chl c ), carotenoid (Car), and soluble carbohydrate contents. At 1000 ppmv, however, none of the parameters had significant differences between the different copper concentrations. Our data suggest that excess copper may inhibit the growth of juvenile sporophytes of S. japonica , but this negative effect could be alleviated by CO 2 -induced ocean acidification.