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颗石藻(Emiliania huxleyi)释放溶解态碳水化合物和形成透明胞外聚合物颗粒取决于藻类的生命周期和细菌的活性。

Release of dissolved carbohydrates by Emiliania huxleyi and formation of transparent exopolymer particles depend on algal life cycle and bacterial activity.

机构信息

Research Group Protistology and Aquatic Ecology, Department of Biology, Ghent University, Krijgslaan 281 - S8, B-9000, Gent, Belgium.

出版信息

Environ Microbiol. 2013 May;15(5):1514-31. doi: 10.1111/j.1462-2920.2012.02873.x. Epub 2012 Sep 18.

DOI:10.1111/j.1462-2920.2012.02873.x
PMID:22985062
Abstract

The coccolithophore Emiliania huxleyi plays a pivotal role in the marine carbon cycle. However, we have only limited understanding of how its life cycle and bacterial interactions affect the production and composition of dissolved extracellular organic carbon and its transfer to the particulate pool. We traced the fate of photosynthetically fixed carbon during phosphate-limited stationary growth of non-axenic, calcifying E. huxleyi batch cultures, and more specifically the transfer of this carbon to bacteria and to dissolved high molecular weight neutral aldoses (HMW NAld) and extracellular particulate carbon. We then compared the dynamics of dissolved carbohydrates and transparent exopolymer particles (TEP) between cultures of non-axenic and axenic diploid E. huxleyi. In addition, we present the first data on extracellular organic carbon in (non-axenic) haploid E. huxleyi cultures. Bacteria enhanced the accumulation of dissolved polysaccharides and altered the composition of dissolved HMW NAld, while they also stimulated the formation of TEP containing high densities of charged polysaccharides in diploid E. huxleyi cultures. In haploid E. huxleyi cultures we found a more pronounced accumulation of dissolved carbohydrates, which had a different NAld composition than the diploid cultures. TEP formation was significantly lower than in the diploid cultures, despite the presence of bacteria. In diploid E. huxleyi cultures, we measured a high level of extracellular release of organic carbon (34-76%), retrieved mainly in the particulate pool instead of the dissolved pool. Enhanced formation of sticky TEP due to bacteria-alga interactions, in concert with the production of coccoliths, suggests that especially diploid E. huxleyi blooms increase the efficiency of export production in the ocean during dissolved phosphate-limited conditions.

摘要

颗石藻 Emiliania huxleyi 在海洋碳循环中起着关键作用。然而,我们对于其生命周期和细菌相互作用如何影响溶解态细胞外有机碳的产生和组成及其向颗粒相的转移,只有有限的了解。我们追踪了非共生、钙化 Emiliania huxleyi 分批培养物在磷酸盐限制的静止生长过程中固定碳的命运,更具体地说,是将这些碳转移到细菌和溶解态高分子量中性醛糖(HMW NAld)和细胞外颗粒碳中。然后,我们比较了非共生和共生二倍体 Emiliania huxleyi 培养物中溶解态碳水化合物和透明胞外聚合物(TEP)的动态。此外,我们还首次提供了(非共生)单倍体 Emiliania huxleyi 培养物中细胞外有机碳的数据。细菌增强了溶解态多糖的积累,并改变了溶解态 HMW NAld 的组成,同时还刺激了含有高密度带电荷多糖的 TEP 的形成,在二倍体 Emiliania huxleyi 培养物中。在单倍体 Emiliania huxleyi 培养物中,我们发现溶解态碳水化合物的积累更为明显,其 NAld 组成与二倍体培养物不同。尽管存在细菌,但 TEP 的形成明显低于二倍体培养物。在二倍体 Emiliania huxleyi 培养物中,我们测量了高水平的细胞外有机碳释放(34-76%),主要在颗粒相中回收,而不是在溶解相中回收。由于细菌-藻类相互作用增强了粘性 TEP 的形成,再加上 coccoliths 的产生,这表明特别是二倍体 Emiliania huxleyi 水华在溶解态磷酸盐限制条件下增加了海洋中输出生产的效率。

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