Azcárate-García Tomás, Avila Conxita, Figuerola Blanca
Department of Marine Biology and Oceanography, Institute of Marine Sciences (ICM-CSIC), Passeig Maritim de la Barceloneta 37-49, Barcelona, 08003, Catalonia, Spain; Department of Evolutionary Biology, Ecology and Environmental Sciences & Biodiversity Research Institute (IRBio), University of Barcelona, Av. Diagonal 643, Barcelona, 08028, Catalonia, Spain.
Department of Evolutionary Biology, Ecology and Environmental Sciences & Biodiversity Research Institute (IRBio), University of Barcelona, Av. Diagonal 643, Barcelona, 08028, Catalonia, Spain.
Mar Environ Res. 2024 Nov;202:106771. doi: 10.1016/j.marenvres.2024.106771. Epub 2024 Sep 26.
Ocean warming and acidification driven by anthropogenic CO emissions may impact the mineral composition of marine calcifiers. Species with high skeletal Mg content could be more susceptible in polar regions due to the increased solubility of CO at lower temperatures. We aimed to assess the environmental influence on skeletal Mg content of Antarctic echinoderms belonging to Asteroidea, Ophiuroidea, Echinoidea and Holothuroidea classes, along a latitudinal gradient from the South Shetland Islands to Rothera (Adelaide Island). We found that all skeletal structures, except for echinoid spines, exhibited high Mg content, with asteroids showing the highest levels. Our results suggest that asteroids and holothuroids exert a higher biological capacity to regulate Mg incorporation into their skeletons. In contrast, the variability observed in the skeletal Mg content of ophiuroids and echinoids appears to be more influenced by local environmental conditions. Species-specific differences in how environmental factors affect the skeletal Mg content can thus be expected as a response to global climate change.
人为碳排放导致的海洋变暖和酸化可能会影响海洋钙化生物的矿物质组成。由于低温下二氧化碳溶解度增加,骨骼镁含量高的物种在极地地区可能更易受到影响。我们旨在评估从南设得兰群岛到罗瑟拉(阿德莱德岛)的纬度梯度上,属于海星纲、蛇尾纲、海胆纲和海参纲的南极棘皮动物骨骼镁含量所受的环境影响。我们发现,除海胆棘外,所有骨骼结构的镁含量都很高,其中海星的镁含量最高。我们的研究结果表明,海星和海参在调节镁融入其骨骼方面具有更高的生物能力。相比之下,蛇尾类和海胆类骨骼镁含量的变异性似乎更受当地环境条件的影响。因此,作为对全球气候变化的响应,可以预期环境因素影响骨骼镁含量的物种特异性差异。