盐度引起的干旱地区不同盐湖微生物群落多样性、稳定性和功能特征的变化

IF 3.3 3区 生物学 Q2 ECOLOGY Microbial Ecology Pub Date : 2024-11-01 DOI:10.1007/s00248-024-02442-8
Lei Gao, Manik Prabhu Narsing Rao, Yong-Hong Liu, Pan-Deng Wang, Zheng-Han Lian, Rashidin Abdugheni, Hong-Chen Jiang, Jian-Yu Jiao, Vyacheslav Shurigin, Bao-Zhu Fang, Wen-Jun Li
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引用次数: 0

摘要

盐湖的特点是高盐度和有限的营养供应,为研究极端嗜卤生物及其生物地球化学过程提供了理想的环境。本研究利用 16S rRNA 扩增子测序和元基因组学方法研究了借水沉积物中的原核微生物群落及其生态功能(具有盐度梯度和时间序列)。我们的研究结果表明,微生物多样性与盐度呈负相关。在高盐度湖泊中,古细菌明显占优势,这表明微生物群落的组成发生了很大变化。研究结果表明,盐度升高会促进同质选择压力,导致微生物多样性和群落结构发生重大变化,同时阻碍微生物之间的相互作用。这导致微生物生态网络的复杂性明显下降,最终影响微生物群落的整体生态功能反应,如碳固定、硫和氮代谢。总之,我们的研究结果表明,盐度促使古细菌明显占优势,选择适应极端条件的物种,并降低盐湖生态系统中微生物群落的复杂性。
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SALINITY-Induced Changes in Diversity, Stability, and Functional Profiles of Microbial Communities in Different Saline Lakes in Arid Areas.

Saline lakes, characterized by high salinity and limited nutrient availability, provide an ideal environment for studying extreme halophiles and their biogeochemical processes. The present study examined prokaryotic microbial communities and their ecological functions in lentic sediments (with the salinity gradient and time series) using 16S rRNA amplicon sequencing and a metagenomic approach. Our findings revealed a negative correlation between microbial diversity and salinity. The notable predominance of Archaea in high-salinity lakes signified a considerable alteration in the composition of the microbial community. The results indicate that elevated salinity promotes homogeneous selection pressures, causing substantial alterations in microbial diversity and community structure, and simultaneously hindering interactions among microorganisms. This results in a notable decrease in the complexity of microbial ecological networks, ultimately influencing the overall ecological functional responses of microbial communities such as carbon fixation, sulfur, and nitrogen metabolism. Overall, our findings reveal salinity drives a notable predominance of Archaea, selects for species adapted to extreme conditions, and decreases microbial community complexity within saline lake ecosystems.

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来源期刊
Microbial Ecology
Microbial Ecology 生物-海洋与淡水生物学
CiteScore
6.90
自引率
2.80%
发文量
212
审稿时长
3-8 weeks
期刊介绍: The journal Microbial Ecology was founded more than 50 years ago by Dr. Ralph Mitchell, Gordon McKay Professor of Applied Biology at Harvard University in Cambridge, MA. The journal has evolved to become a premier location for the presentation of manuscripts that represent advances in the field of microbial ecology. The journal has become a dedicated international forum for the presentation of high-quality scientific investigations of how microorganisms interact with their environment, with each other and with their hosts. Microbial Ecology offers articles of original research in full paper and note formats, as well as brief reviews and topical position papers.
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