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February 2, 2026Agronomy0 citationsOpen Access

Soil Properties and Bacterial Community Responses to Herb Vegetation Succession Beneath Sand-Fixation Plantations in a Sandy Grassland, NE China

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CCC. F. ChenYZYing ZhangZCZhenbo Cui

Key Points

  • This study aims to explore how herbaceous vegetation succession influences soil properties and bacterial community structures beneath shrub plantations.
  • Analyzed soil bacterial community responses under different stages of herbaceous succession.
  • Measured key functional genes associated with nutrient cycling.
  • Assessed soil nutrient levels and enzymatic activities.
  • Evaluated plant species richness and biomass across succession stages.
  • Plant species richness, diversity, and biomass increased progressively with succession.
  • Soil nutrients and enzyme activities improved significantly at each succession stage.
  • Abundance of key functional genes nifH, amoA, and phoD rose with vegetation succession.
  • Bacterial diversity rapidly increased during succession, although structural recovery was delayed.

Abstract

Establishing shrub plantations on mobile sand dunes is an effective strategy to combat desertification in semi-arid regions. Herbaceous communities developing beneath these plantations enhance ecosystem stability and improve revegetation outcomes. This study investigated the structural responses of soil bacterial communities, key functional genes (nifH, amoA, and phoD), and plant–soil–microbe interactions across a herbaceous vegetation succession gradient (initiation, early, middle, and stable stages) under Caragana microphylla sand-fixation plantations in the sandy Horqin Grassland. The results revealed that plant species richness, diversity, and biomass increased progressively with succession. Concurrent improvements in soil nutrients (organic matter, nitrogen, phosphorus, and potassium) and enzymatic activities (urease, protease, phosphatase, glucosidase, polyphenol oxidase, and dehydrogenase) were observed. The abundances of nifH, amoA, and phoD genes rose progressively with vegetation succession, contributing to enhanced soil nutrient levels. All dominant bacterial phyla and genera detected constituted shared taxa across successional stages, but their relative abundances shifted dynamically. Herbaceous succession facilitated rapid restoration of bacterial diversity, though structural recovery lagged, depending on the quantitative fluctuations of the dominant taxa. Soil pH, organic matter, electrical conductivity, total N, total P, available P, and available K all significantly influenced the soil bacterial community, with pH and organic matter being the most influential factors. These findings highlight plant–soil–microbe interactions as intrinsic drivers of vegetation succession in desertified ecosystems.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/6980feb9c1c9540dea8111f4https://doi.org/10.3390/agronomy16030342
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