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钙化要求因具有生态重要性的颗石藻物种而异。

The requirement for calcification differs between ecologically important coccolithophore species.

机构信息

Marine Biological Association, Plymouth, PL1 2PB, UK.

School of Ocean and Earth Science, University of Southampton, Southampton, SO14 3ZH, UK.

出版信息

New Phytol. 2018 Oct;220(1):147-162. doi: 10.1111/nph.15272. Epub 2018 Jun 19.

Abstract

Coccolithophores are globally distributed unicellular marine algae that are characterized by their covering of calcite coccoliths. Calcification by coccolithophores contributes significantly to global biogeochemical cycles. However, the physiological requirement for calcification remains poorly understood as non-calcifying strains of some commonly used model species, such as Emiliania huxleyi, grow normally in laboratory culture. To determine whether the requirement for calcification differs between coccolithophore species, we utilized multiple independent methodologies to disrupt calcification in two important species of coccolithophore: E. huxleyi and Coccolithus braarudii. We investigated their physiological response and used time-lapse imaging to visualize the processes of calcification and cell division in individual cells. Disruption of calcification resulted in major growth defects in C. braarudii, but not in E. huxleyi. We found no evidence that calcification supports photosynthesis in C. braarudii, but showed that an inability to maintain an intact coccosphere results in cell cycle arrest. We found that C. braarudii is very different from E. huxleyi as it exhibits an obligate requirement for calcification. The identification of a growth defect in C. braarudii resulting from disruption of the coccosphere may be important in considering their response to future changes in ocean carbonate chemistry.

摘要

颗石藻是一种广泛分布的单细胞海洋藻类,其特征是具有方解石质的颗石藻。颗石藻的钙化作用对全球生物地球化学循环有重要贡献。然而,由于一些常用模式物种(如 Emiliania huxleyi)的非钙化株系在实验室培养中正常生长,钙化的生理需求仍未得到很好的理解。为了确定钙化需求是否在颗石藻物种之间存在差异,我们利用多种独立的方法在两种重要的颗石藻物种:E. huxleyi 和 Coccolithus braarudii 中破坏钙化。我们研究了它们的生理反应,并利用延时成像观察单个细胞中钙化和细胞分裂的过程。钙化的破坏导致 C. braarudii 出现严重的生长缺陷,但 E. huxleyi 没有。我们没有证据表明钙化支持 C. braarudii 的光合作用,但表明无法维持完整的颗石球会导致细胞周期停滞。我们发现 C. braarudii 与 E. huxleyi 非常不同,因为它表现出对钙化的强制性需求。破坏颗石球导致 C. braarudii 生长缺陷的发现,对于考虑它们对未来海洋碳酸盐化学变化的反应可能很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f1a3/6175242/76dd5fda9f76/NPH-220-147-g001.jpg

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