首页> 外文期刊>Microbial Ecology: An International Journal >Microbial diversity in sediments of saline qinghai lake, china: linking geochemical controls to microbial ecology
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Microbial diversity in sediments of saline qinghai lake, china: linking geochemical controls to microbial ecology

机译:中国盐湖青海湖沉积物中的微生物多样性:将地球化学控制与微生物生态学联系起来

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Saline lakes at high altitudes represent an important and extreme microbial ecosystem, yet little is known about microbial diversity in such environments. The objective of this study was to examine the change of microbial diversity from the bottom of the lake to sediments of 40 cm in depth in a core from Qinghai Lake. The lake is saline (12.5 g/L salinity) and alkaline (pH 9.4) and is located on the Qinghai-Tibetan Plateau at an altitude of 3196 m above sea level. Pore water chemistry of the core revealed low concentrations of sulfate and iron (<1 mM), but high concentrations of acetate (40-70 mM) and dissolved organic carbon (1596-5443 mg/L). Total organic carbon and total nitrogen contents in the sediments were approximately 2 and <0.5%, respectively. Acridine orange direct count data indicated that cell numbers decreased from 4 x 10(9) cells/g at the water-sediment interface to 6x 10(7) cells/g wet sediment at the 40-cm depth. This change in biomass was positively correlated with acetate concentration in pore water. Phospholipid fatty acid (PLFA) community structure analyses determined decrease in the proportion of the Proteobacteria and increase in the Firmicutes with increased depth. Characterization of small subunit (SSU) rRNA genes amplified from the sediments indicated a shift in the bacterial community with depth. Whereas the alpha-, beta-, and gamma-Proteobacteria and the Cytophaga/Flavobacterium/Bacteroides (CFB) were dominant at the water-sediment interface, low G + C gram-positive bacteria (a subgroup of Firmicutes) became the predominant group in the anoxic sediments. Both PLFA and the sequence data showed similar trend. The Proteobacteria, CFB, and gram-positive bacteria are present in other saline lakes, but thepresence of Actinobacteria and Acidobacteria/Holophaga in significant proportions in the Qinghai Lake sediments appears to be unique. The archaeal diversity was much lower, and clone sequences could be grouped inthe Euryarchaeota and Crenarchaeota domains. The archaeal clones were not related to any known cultures but to sequences previously found in methane-rich sediments. Acetate-utilizing methanogens were isolated from sediment incubations, and alpha- and gamma-proteobacterial isolates were obtained from a water sample from the lakebottom (23 m). Our data collectively showed that the observed diversity and shift in the community structure with depth was correlated with geochemical parameters (the redox state and availability of electron acceptor and donor). Heterotrophic methanogenesis is possibly adominant metabolic process in the Qinghai Lake sediments. These results reinforce the importance of geochemical controls on microbial ecology in saline and alkaline lake environments.
机译:高海拔的盐湖代表着重要的极端微生物生态系统,但对于这种环境中的微生物多样性知之甚少。这项研究的目的是研究从青海湖核心的湖底微生物到深度为40 cm的沉积物的微生物多样性的变化。该湖盐碱(12.5 g / L)和碱性(pH 9.4),位于青藏高原,海拔3196 m。岩心的孔隙水化学性质显示低浓度的硫酸盐和铁(<1 mM),但高浓度的乙酸盐(40-70 mM)和溶解的有机碳(1596-5443 mg / L)。沉积物中的总有机碳和总氮含量分别约为2%和<0.5%。 cr啶橙直接计数数据表明,在水-沉积物界面处,细胞数从4 x 10(9)细胞/ g减少到40-cm深度的6x 10(7)细胞/ g湿沉积物。生物量的这种变化与孔隙水中乙酸盐浓度呈正相关。磷脂脂肪酸(PLFA)群落结构分析确定了变形杆菌比例的降低和深度增加的Firmicutes的升高。从沉积物中扩增出的小亚基(SSU)rRNA基因的特征表明细菌群落随深度的变化。在水-沉积物界面上,α-,β-和γ-变形杆菌和细胞噬菌/黄杆菌/拟杆菌(CFB)占主导地位,而低G + C革兰氏阳性菌(Ficerticutes的一个亚群)则成为该菌的主要菌群。缺氧沉积物。 PLFA和序列数据都显示出相似的趋势。变形杆菌,CFB和革兰氏阳性细菌也存在于其他盐湖中,但在青海湖沉积物中大量存在放线菌和嗜酸菌/嗜盐菌似乎是独特的。古细菌的多样性要低得多,克隆序列可以分为Euryarchaeota和Crenarchaeota域。古细菌克隆与任何已知的培养物都不相关,但与先前在富含甲烷的沉积物中发现的序列无关。从沉淀物的培养中分离出利用乙酸的产甲烷菌,并从湖底(23 m)的水样中获得了α-和γ-变形杆菌。我们的数据共同表明,观察到的群落结构的多样性和深度变化与地球化学参数(氧化还原状态以及电子受体和施主的可用性)有关。异养甲烷生成可能是青海湖沉积物中主要的代谢过程。这些结果加强了盐碱湖环境中地球化学控制对微生物生态的重要性。

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