东部平原矿区复垦土壤微生物多样性驱动土壤多功能性变化
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作者单位:

1.河海大学公共管理学院;2.中国矿业大学环境与测绘学院;3.南京大学地理与海洋科学学院

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中图分类号:

S812.2

基金项目:

国家自然科学基金项目(面上项目)


The microbial diversity of reclaimed soil drives its multifunctional variation in the eastern plain mining area
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Affiliation:

1.School of Public Administration,Hohai University;2.School of Environment and Spatial Informatics,China University of Mining and Technology,Xuzhou;3.School of Geography and Ocean Science,Nanjing University,Nanjing

Fund Project:

The National Natural Science Foundation of China (General Program)

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    摘要:

    土地复垦是高潜水位矿区土壤生产力恢复的重要手段,但多数复垦土壤肥力等功能低下,复垦土壤多功能性形成与恢复的微生物学机制缺少深入认知。为此,本研究选取山东省邹城市东滩矿区复垦9年、12年、15年和18年等 4个复垦年限和1个对照样,共采集75个0~20 cm表层土样,测定有机碳等18个土壤物理化学生物指标,探究复垦土壤微生物多样性与土壤多功能性之间互作关系及多功能性变化的微生物学机制。结果表明:(1)土地复垦显著改善了矿区土壤多功能性,复垦18年土壤多功能性几乎达到对照样水平,其中土壤有机碳、pH、有效磷和大多数酶活性是多功能性的重要影响因子;(2)微生物群落多样性随复垦年限增加呈现显著增长,但丰富度表现迥异,细菌丰富度在复垦12年后增长率趋于平缓,真菌丰富度仅复垦18年有显著增加。(3)微生物群落多样性正向作用于网络复杂程度,增强了物种之间关联,从而提高多功能性。相比真菌,细菌网络复杂程度对复垦土壤多功能性恢复的影响更大。本研究揭示了东部平原矿区复垦土壤多功能性恢复的驱动机制,对深入理解复垦土壤微生物区系发育与功能演替及质量管护具有重要指导意义。

    Abstract:

    【Objective】Land reclamation is a significantly important way to restore soil productivity in high groundwater mining areas. However, most of the reclaimed soil always shows poor functions, such as lower fertility and biodiversity, while the in-depth understanding of microbiological mechanisms underlying the formation and restoration of multifunctional reclaimed soil is still deficient. 【Method】With this purpose, 4 Four reclamation plots including 9 years, 12 years, 15 years, and 18 years of recla-mation, and 1 control plot from the Dongtan mining area in Zoucheng City, Shandong Province, were selected as the research objects. A total of 75 surface soil samples were collected, and 18 soil physical, chemical, and biological indicators such as or-ganic carbon were measured to explore the interaction between soil microbial communities and soil multifunctionality, as well as the microbiological mechanisms of multifunctionality variation. Moreover, based on the molecular ecological network methods, supplemented by statistical analysis methods, several microbial networks were constructed to investigate the interaction between microbial community diversity, network structure, and soil multifunctionality. 【Result】 The results showed that: (1) Land reclamation activities and the normal vegetation rotation of the cultivated land have significantly improved soil multifunctionality, with soil multifunctionality almost reaching the undisturbed control level after 18 years of reclamation. Moreover, among the soil properties, soil organic carbon, pH, available phosphorous, and most enzyme activities were important influencing factors for multifunctionality. (2) With the increasing reclamation years, soil microbial diversity significantly increased, while the rich-ness performance of bacteria and fungi were was different. The increasing trend of bacteria was not significantly after 12 years of reclamation whereas fungi increased significantly until 18 years of reclamation. But However, the abundances of bacteria and fungi reached normal farmland levels after 15 years and 18 years of reclamation, respectively. (3) The analysis results of the micro-bial co-occurrence network showed that the nodes, edges, average degree, average path length, network density, clustering coef-ficient, and betweenness centrality in the bacterial community co-occurrence network significantly increased with the increase of reclamation time. Moreover, the topological properties of bacterial and fungal subnetworks such as edge, degree, and network density were significantly positively correlated with soil multifunctional properties. The diversity of microbial communities showed a positive impact on the network complexity, enhancing the association between species and thereby enhancing their versatility. Both the complexities of bacterial and fungal community networks presented significantly correlations with soil mul-tifunctionality. The impact of bacterial network complexity on soil multifunctionality was not affected by other indicators, whereas the correlation between fungal network complexity and soil multifunctionality was influenced by bacterial richness, soil microbial diversity, and fungal richness. The structural equation model results indicated that microbial diversity can directly and positively regulate soil multifunctionality, or indirectly manipulate soil multifunctionality by positively influencing the net-work complexity of bacteria and fungi.【Conclusion】 This study has revealed the driving mechanism of multifunctional res-toration of reclaimed soil in the eastern plain mining area, which would provide an important guidance for the deeper under-standing of the development and functional succession of reclaimed soil microbiota, as well as soil quality management and protection.

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马 静,华子宜,尤云楠,朱燕峰,张 琦,陈 浮.东部平原矿区复垦土壤微生物多样性驱动土壤多功能性变化[J].土壤学报,,[待发表]
MA Jing, HUA Ziyi, YOU Yunnan, ZHU Yanfeng, ZHNAG Qi, CHEN Fu. The microbial diversity of reclaimed soil drives its multifunctional variation in the eastern plain mining area[J]. Acta Pedologica Sinica,,[In Press]

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  • 收稿日期:2024-01-01
  • 最后修改日期:2024-03-26
  • 录用日期:2024-05-24
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