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中国黄土高原亚高山草甸退化相关的土壤细菌群落响应和氮循环变化。

Soil Bacterial Community Response and Nitrogen Cycling Variations Associated with Subalpine Meadow Degradation on the Loess Plateau, China.

机构信息

Institute of Loess Plateau, Shanxi University, Shanxi Key Laboratory of Ecological Restoration on the Loess Plateau, Taiyuan, China.

Department of Geography, Xinzhou Teachers University, Xinzhou, China.

出版信息

Appl Environ Microbiol. 2020 Apr 17;86(9). doi: 10.1128/AEM.00180-20.

Abstract

Grassland degradation is an ecological problem worldwide. This study aimed to reveal the patterns of the variations in bacterial diversity and community structure and in nitrogen cycling functional genes along a subalpine meadow degradation gradient on the Loess Plateau, China. Meadow degradation had a significant effect on the beta diversity of soil bacterial communities ( < 0.05) but not on the alpha diversity ( > 0.05). Nonmetric multidimensional scaling (NMDS) and analysis of similarity (ANOSIM) indicated that the compositions of bacterial and plant communities changed remarkably with increasing meadow degradation (all < 0.05). The beta diversities of the plant and soil bacterial communities were significantly correlated ( < 0.05), while their alpha diversities were weakly correlated ( > 0.05) along the meadow degradation gradient. Redundancy analysis (RDA) showed that the structure of the bacterial community was strongly correlated with total nitrogen (TN), nitrate nitrogen (NO-N), plant Shannon diversity, plant coverage, and soil bulk density (all < 0.05). Moreover, the abundances of N fixation and denitrification genes of the bacterial community decreased along the degradation gradient, but the abundance of nitrification genes increased along the gradient. The structure of the set of N cycling genes present at each site was more sensitive to subalpine meadow degradation than the structure of the total bacterial community. Our findings revealed compositional shifts in the plant and bacterial communities and in the abundances of key N cycling genes as well as the potential drivers of these shifts under different degrees of subalpine meadow degradation. Soil microbes play a crucial role in the biogeochemical cycles of grassland ecosystems, yet information on how their community structure and functional characteristics change with subalpine meadow degradation is scarce. In this study, we evaluated the changes in bacterial community structure and nitrogen functional genes in degraded meadow soils. Meadow degradation had a significant effect on bacterial community composition. Soil total nitrogen was the best predictor of bacterial community structure. The beta diversities of the plant and soil bacterial communities were significantly correlated, while their alpha diversities were only weakly correlated. Meadow degradation decreased the potential for nitrogen fixation and denitrification but increased the potential for nitrification. These results have implications for the restoration and reconstruction of subalpine meadow ecosystem on the Loess Plateau.

摘要

草原退化是一个全球性的生态问题。本研究旨在揭示中国黄土高原亚高山草甸退化梯度上细菌多样性和群落结构以及氮循环功能基因变化的模式。草地退化对土壤细菌群落的β多样性有显著影响(<0.05),但对α多样性没有影响(>0.05)。非度量多维尺度(NMDS)和相似性分析(ANOSIM)表明,随着草地退化的加剧,细菌和植物群落的组成发生了显著变化(均<0.05)。植物和土壤细菌群落的β多样性显著相关(<0.05),而它们的α多样性沿草地退化梯度相关性较弱(>0.05)。冗余分析(RDA)表明,细菌群落的结构与总氮(TN)、硝酸盐氮(NO-N)、植物 Shannon 多样性、植物盖度和土壤容重密切相关(均<0.05)。此外,随着退化梯度的增加,细菌群落中固氮和反硝化基因的丰度降低,而硝化基因的丰度增加。每个地点存在的氮循环基因集合的结构对亚高山草甸退化的敏感性高于总细菌群落的结构。我们的研究结果揭示了在不同程度的亚高山草甸退化下,植物和细菌群落的组成变化以及关键氮循环基因的丰度变化,以及这些变化的潜在驱动因素。土壤微生物在草原生态系统的生物地球化学循环中起着至关重要的作用,但关于它们的群落结构和功能特征如何随亚高山草甸退化而变化的信息还很缺乏。在这项研究中,我们评估了退化草甸土壤中细菌群落结构和氮功能基因的变化。草地退化对细菌群落组成有显著影响。土壤总氮是细菌群落结构的最佳预测因子。植物和土壤细菌群落的β多样性显著相关,而它们的α多样性相关性较弱。草地退化降低了固氮和反硝化的潜力,但增加了硝化的潜力。这些结果对黄土高原亚高山草甸生态系统的恢复和重建具有重要意义。

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