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Phytoplankton growth and microzooplankton grazing dynamics across vertical environmental gradients determined by transplant in situ dilution experiments

机译:通过移植原位稀释实验确定的垂直环境梯度中浮游植物的生长和微浮游植物的放牧动力学

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摘要

The Costa Rica Dome (CRD) represents a classic case of the bloom-forming capacity of small phytoplankton. Unlike other upwelling systems, autotrophic biomass in the CRD is dominated by picocyanobacteria and small eukaryotes that outcompete larger diatoms and reach extremely high biomass levels. We investigated responses of the subsurface phytoplankton community of the CRD to changes associated with vertical displacement of water masses, coupling in situ transplanted dilution experiments with flow cytometry and epifluorescence microscopy to assess group-specific dynamics. Growth rates of Synechococcus (SYN) and photosynthetic picoeukaryotes (PEUK) were positively correlated with light (Rpearson_SYN = 0.602 and Rpearson_PEUK = 0.588, P < 0.001). Growth rates of Prochlorococcus (PRO), likely affected by photoinhibition, were not light correlated (Rpearson_PRO = 0.101, P = 0.601). Overall, grazing and growth rates were closely coupled in all picophytoplankton groups (Rspearman_PRO = 0.572, Rspearman_SYN = 0.588, Rspearman_PEUK = 0.624), and net growth rates remained close to zero. Conversely, the abundance and biomass of larger phytoplankton, mainly diatoms, increased more than 10-fold in shallower transplant incubations indicating that, in addition to trace-metal chemistry, light also plays a significant role in controlling microphytoplankton populations in the CRD.
机译:哥斯达黎加圆顶(CRD)代表了小型浮游植物水华形成能力的经典案例。与其他上升流系统不同,CRD中的自养生物质以微蓝细菌和小型真核生物为主导,它们胜过较大的硅藻并达到极高的生物质水平。我们调查了CRD水下浮游植物群落对与水团垂直位移相关的变化的响应,将原位移植的稀释实验与流式细胞仪和落射荧光显微镜相结合,以评估特定组的动力学。球菌(SYN)和光合微核生物(PEUK)的生长速率与光呈正相关(Rpearson_SYN = 0.602和Rpearson_PEUK = 0.588,P <0.001)。可能受光抑制影响的原球菌(PRO)的生长速率与光没有相关性(Rpearson_PRO = 0.101,P = 0.601)。总体而言,所有浮游浮游动物组的放牧和增长率均紧密相关(Rspearman_PRO = 0.572,Rspearman_SYN = 0.588,Rspearman_PEUK = 0.624),净增长率仍接近于零。相反,较大的浮游植物(主要是硅藻)的丰度和生物量在较浅的移栽孵育中增加了10倍以上,这表明,除了微量金属化学外,光在控制CRD中的微浮游植物种群中也起着重要作用。

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