铁和光对东南极洲浮游植物生长的限制

IF 2.7 3区 地球科学 Q2 GEOSCIENCES, MULTIDISCIPLINARY Journal of Marine Systems Pub Date : 2022-10-01 DOI:10.1016/j.jmarsys.2022.103774
Clara R. Vives , Christina Schallenberg , Peter G. Strutton , Karen J. Westwood
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引用次数: 1

摘要

浮游植物的生产通过生物碳泵控制二氧化碳从大气向海洋的转移,促进二氧化碳的固存,从而有助于调节全球气候。在南大洋,一个高营养低叶绿素区域,生产力受到包括铁在内的微量营养素的限制。光的限制作用也很重要,特别是在南大洋浮游植物适应低铁条件的背景下。为了研究铁和光限制对浮游植物生长的相对优势,我们在2019年东南极洲夏季研究航行期间进行了一系列孵化实验。结果表明,虽然光照是浮游植物生长的主要限制因素,但铁的添加有利于高光条件下浮游植物的生长。这支持了实验室(Strzepek等人,2019)和罗斯海现场实验(Alderkamp等人,2019)的类似发现,并在南部夏季后期从南大洋的不同区域提供了新的见解。类似的结果以前在较大的硅藻中被记录,在这里我们提供的证据表明,这也适用于较小的细胞。我们的发现增加了关于南大洋铁和光限制的知识体系,在一个样本不足的地区,导致更好地理解初级生产将如何在未来变暖的海洋中发生变化。
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Iron and light limitation of phytoplankton growth off East Antarctica

Phytoplankton production controls the transfer of carbon dioxide from the atmosphere into the ocean through the biological carbon pump, facilitating the sequestration of carbon dioxide and thus, contributing to the regulation of global climate. In the Southern Ocean, a high-nutrient low-chlorophyll region, productivity is limited by micronutrients including iron. The limiting role of light is also important, especially in the context of Southern Ocean phytoplankton adaptation to the low-iron conditions. To investigate the relative dominance of iron and light limitation on phytoplankton growth, we conducted a series of incubation experiments during a 2019 summer research voyage off East Antarctica. Our results show that, while light was the primary limiting factor of phytoplankton growth, iron addition became favourable for growth under high light conditions. This supports similar findings from laboratory (Strzepek et al., 2019) and field experiments in the Ross Sea (Alderkamp et al., 2019) and provides a new insight from a different region of the Southern Ocean, at a later stage of the austral summer. Similar results have previously been documented in larger diatoms, and here we provide evidence that it is also true for smaller cells. Our findings add to the body of knowledge regarding iron and light limitation in the Southern Ocean, in a poorly sampled area, leading to a better understanding of how primary production will change in a future warming ocean.

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来源期刊
Journal of Marine Systems
Journal of Marine Systems 地学-地球科学综合
CiteScore
6.20
自引率
3.60%
发文量
81
审稿时长
6 months
期刊介绍: The Journal of Marine Systems provides a medium for interdisciplinary exchange between physical, chemical and biological oceanographers and marine geologists. The journal welcomes original research papers and review articles. Preference will be given to interdisciplinary approaches to marine systems.
期刊最新文献
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