CAS Key Laboratory for Experimental Study under Deep-sea Extreme Conditions, Institute of Deep-sea Science and Engineering, Chinese Academy of Sciences, Sanya, China.
University of Chinese Academy of Sciences, Beijing, China.
Sci Rep. 2018 Oct 18;8(1):15357. doi: 10.1038/s41598-018-33790-4.
Picoeukaryotes play prominent roles in the biogeochemical cycles in marine ecosystems. However, their molecular diversity studies have been confined in marine surface waters or shallow coastal sediments. Here, we investigated the diversity and metabolic activity of picoeukaryotic communities at depths ranging from the surface to the abyssopelagic zone in the western Pacific Ocean above the north and south slopes of the Mariana Trench. This was achieved by amplifying and sequencing the V4 region of both 18S ribosomal DNA and cDNA using Illumina HiSeq sequencing. Our study revealed: (1) Four super-groups (i.e., Alveolata, Opisthokonta, Rhizaria and Stramenopiles) dominated the picoeukaryote assemblages through the water column, although they accounted for different proportions at DNA and cDNA levels. Our data expand the deep-sea assemblages from current bathypelagic to abyssopelagic zones. (2) Using the cDNA-DNA ratio as a proxy of relative metabolic activity, the highest activity for most subgroups was usually found in the mesopelagic zone; and (3) Population shift along the vertical scale was more prominent than that on the horizontal differences, which might be explained by the sharp physicochemical gradients along the water depths. Overall, our study provides a better understanding of the diversity and metabolic activity of picoeukaryotes in water columns of the deep ocean in response to varying environmental conditions.
微微型真核生物在海洋生态系统的生物地球化学循环中起着重要作用。然而,它们的分子多样性研究一直局限于海洋表层水或浅海沉积物。在这里,我们调查了西太平洋马里亚纳海沟南北坡上方海洋水柱从表层到深渊带的微微型真核生物群落的多样性和代谢活性。这是通过使用 Illumina HiSeq 测序扩增和测序 18S 核糖体 DNA 和 cDNA 的 V4 区域来实现的。我们的研究揭示了:(1) 四个超级群(即鞭毛藻类、后口动物、根足动物和不等鞭毛类)通过水柱主导着微微型真核生物群落,尽管它们在 DNA 和 cDNA 水平上的比例不同。我们的数据将深海生物群从当前的深海扩展到深渊带。(2) 使用 cDNA-DNA 比作为相对代谢活性的替代物,大多数亚群的最高活性通常在中层带;(3) 垂直尺度上的种群转移比水平差异更为显著,这可能是由于沿水深的物理化学梯度急剧变化所致。总的来说,我们的研究提供了对深海水柱中微微型真核生物多样性和代谢活性的更好理解,以应对不同的环境条件。