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代表性硅藻和颗石藻物种在模拟上升流周期中表现出不同的反应。

Representative Diatom and Coccolithophore Species Exhibit Divergent Responses throughout Simulated Upwelling Cycles.

作者信息

Lampe Robert H, Hernandez Gustavo, Lin Yuan Yu, Marchetti Adrian

机构信息

University of North Carolina at Chapel Hill, Department of Marine Sciences, Chapel Hill, North Carolina, USA.

University of North Carolina at Chapel Hill, Department of Marine Sciences, Chapel Hill, North Carolina, USA

出版信息

mSystems. 2021 Mar 30;6(2):e00188-21. doi: 10.1128/mSystems.00188-21.

Abstract

Wind-driven upwelling followed by relaxation results in cycles of cold nutrient-rich water fueling intense phytoplankton blooms followed by nutrient depletion, bloom decline, and sinking of cells. Surviving cells at depth can then be vertically transported back to the surface with upwelled waters to seed another bloom. As a result of these cycles, phytoplankton communities in upwelling regions are transported through a wide range of light and nutrient conditions. Diatoms appear to be well suited for these cycles, but their responses to them remain understudied. To investigate the bases for diatoms' ecological success in upwelling environments, we employed laboratory simulations of a complete upwelling cycle with a common diatom, , and coccolithophore, We show that while both organisms exhibited physiological and transcriptomic plasticity, the diatom displayed a distinct response enabling it to rapidly shift-up growth rates and nitrate assimilation when returned to light and available nutrients following dark nutrient-deplete conditions. As observed in natural diatom communities, highly expresses before upwelling, or frontloads, key transcriptional and nitrate assimilation genes, coordinating its rapid response to upwelling conditions. Low-iron simulations showed that is capable of maintaining this response when iron is limiting to growth, whereas is not. Differential expression between iron treatments further revealed specific genes used by each organism under low iron availability. Overall, these results highlight the responses of two dominant phytoplankton groups to upwelling cycles, providing insight into the mechanisms fueling diatom blooms during upwelling events. Coastal upwelling regions are among the most biologically productive ecosystems. During upwelling events, nutrient-rich water is delivered from depth resulting in intense phytoplankton blooms typically dominated by diatoms. Along with nutrients, phytoplankton may also be transported from depth to seed these blooms then return to depth as upwelling subsides creating a cycle with varied conditions. To investigate diatoms' success in upwelling regions, we compare the responses of a common diatom and coccolithophore throughout simulated upwelling cycles under iron-replete and iron-limiting conditions. The diatom exhibited a distinct rapid response to upwelling irrespective of iron status, whereas the coccolithophore's response was either delayed or suppressed depending on iron availability. Concurrently, the diatom highly expresses, or frontloads, nitrate assimilation genes prior to upwelling, potentially enabling this rapid response. These results provide insight into the molecular mechanisms underlying diatom blooms and ecological success in upwelling regions.

摘要

风生上升流随后松弛,导致富含营养的冷水形成循环,为强烈的浮游植物大量繁殖提供养分,随后养分耗尽,繁殖衰退,细胞下沉。深层存活的细胞随后可随上升流垂直输送回海面,引发新一轮繁殖。由于这些循环,上升流区域的浮游植物群落经历了广泛的光照和养分条件变化。硅藻似乎很适合这些循环,但其对这些循环的反应仍未得到充分研究。为了探究硅藻在上升流环境中生态成功的基础,我们使用一种常见硅藻和颗石藻对完整的上升流循环进行了实验室模拟。我们发现,虽然这两种生物都表现出生理和转录组可塑性,但硅藻表现出独特的反应,使其在黑暗养分耗尽条件后恢复光照和可利用养分时,能够迅速提高生长速率和硝酸盐同化能力。正如在自然硅藻群落中观察到的那样,在上升流之前或预加载时,硅藻高度表达关键转录和硝酸盐同化基因,协调其对上升流条件的快速反应。低铁模拟表明,当铁限制生长时,硅藻能够维持这种反应,而颗石藻则不能。铁处理之间的差异表达进一步揭示了每种生物在低铁可用性下使用的特定基因。总体而言,这些结果突出了两种主要浮游植物群体对上升流循环的反应,为上升流事件期间促进硅藻大量繁殖的机制提供了见解。沿海上升流区域是生物生产力最高的生态系统之一。在上升流事件期间,富含营养的水从深处输送上来,导致通常以硅藻为主导的强烈浮游植物大量繁殖。除了养分,浮游植物也可能从深处输送上来引发这些繁殖,然后随着上升流消退返回深处,形成一个条件多样的循环。为了研究硅藻在上升流区域的成功,我们比较了一种常见硅藻和颗石藻在铁充足和铁限制条件下整个模拟上升流循环中的反应。无论铁状态如何,硅藻对上升流都表现出独特的快速反应,而颗石藻的反应则根据铁的可用性而延迟或受到抑制。同时,硅藻在上升流之前高度表达或预加载硝酸盐同化基因,这可能使其能够做出这种快速反应。这些结果为上升流区域中硅藻大量繁殖和生态成功的分子机制提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0a30/8546972/206df5af43ff/msystems.00188-21_f001.jpg

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