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Erosion reduces soil microbial diversity, network complexity and multifunctionality

The ISME Journal · 2021 · Vol. 15(8) · pp. 2474–2489
Liping QiuQian ZhangHansong ZhuPeter B. ReichSamiran BanerjeeMarcel G. A. van der HeijdenMichael J. SadowskySatoshi IshiiXiaoxu JiaMingan ShaoBaoyuan LiuHuan JiaoHaiqiang LiXiaorong Wei

Abstract

While soil erosion drives land degradation, the impact of erosion on soil microbial communities and multiple soil functions remains unclear. This hinders our ability to assess the true impact of erosion on soil ecosystem services and our ability to restore eroded environments. Here we examined the effect of erosion on microbial communities at two sites with contrasting soil texture and climates. Eroded plots had lower microbial network complexity, fewer microbial taxa, and fewer associations among microbial taxa, relative to non-eroded plots. Soil erosion also shifted microbial community composition, with decreased relative abundances of dominant phyla such as Proteobacteria, Bacteroidetes, and Gemmatimonadetes. In contrast, erosion led to an increase in the relative abundances of some bacterial families involved in N cycling, such as Acetobacteraceae and Beijerinckiaceae. Changes in microbiota characteristics were strongly related with erosion-induced changes in soil multifunctionality. Together, these results demonstrate that soil erosion has a significant negative impact on soil microbial diversity and functionality.

Microbial Community Ecology and PhysiologySoil Carbon and Nitrogen DynamicsSoil erosion and sediment transportBiologyDiversity (politics)ErosionGeomicrobiologyEcologyComputational biologyMicrobial ecologyGeneticsBacteriaEnvironmental biotechnology

MeSH terms

BacteriaHumansSoilSoil MicrobiologyMicrobial ConsortiaMicrobiota

Funding

  • National Natural Science Foundation of China
  • Chinese Academy of Sciences
  • Beijing Normal University
  • National Key Research and Development Program of China
Citations
733
FWCI
80.76
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References
130
Percentile
100%
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