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January 14, 2026Microorganisms0 citationsOpen Access

Bacterial Community Structure and Environmental Adaptation in the Endorhizosphere and Rhizosphere Soils of Aeluropus sinensis from Saline Lands Across Coastal and Inland Regions of China

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LZLuoyan ZhangSHSaiyu HanXGXiuxiu Guo

Key Points

  • The study aims to explore the role of bacterial communities in the rhizosphere and endorhizosphere of Aeluropus sinensis for salt tolerance.
  • Analyzed microbial diversity and composition using 16S rRNA gene amplicon sequencing.
  • Measured soil physicochemical properties to assess environmental impact.
  • Utilized linear regression to study microbial-environment relationships.
  • Conducted co-occurrence network analysis to identify key taxa and adaptive strategies.
  • Soil salinity significantly influenced rhizosphere bacterial diversity, with moderate levels enhancing richness.
  • Proteobacteria were the dominant group in both root and rhizosphere microbiomes across habitats.
  • The endorhizosphere community showed strong correlations with available phosphorus and total nitrogen in soil.
  • Chemoheterotrophic microbes in the rhizosphere displayed distinct adaptive strategies across environmental gradients.
  • Ammonia-oxidizing bacteria were implicated in supporting nitrogen cycling in saline-alkaline soils.

Abstract

Bacterial communities in the rhizosphere and endorhizosphere of plants show distinct composition, function, and ecological roles during adaptation to diverse habitats. This study examines how rhizosphere and endophytic microbes associated with Aeluropus sinensis—a salt-excreting halophyte—contribute to its salt tolerance across saline-alkali environments. Microbial diversity and composition were analyzed via 16S rRNA gene amplicon sequencing. Soil physicochemical properties were measured to evaluate environmental effects. Linear regression assessed microbial–environment relationships, and co-occurrence networks identified key taxa and their adaptive strategies along environmental gradients. Soil salinity significantly affected rhizosphere bacterial diversity, with moderate levels increasing richness. Proteobacteria dominated both root and rhizosphere microbiomes across habitats. The endorhizosphere community strongly correlated with soil nutrients such as available phosphorus (AP) and total nitrogen (TN). Co-occurrence analysis reveals that chemoheterotrophic microbes in the A. sinensis rhizosphere employ distinct adaptive strategies across gradients, and ammonia-oxidizing bacteria (AOB) may support nitrogen cycling in the Yellow River Delta saline–alkaline ecosystem. This study underscores microbial adaptability in salt-tolerant grasses, demonstrating that comparing rhizosphere and endorhizosphere microbiomes in Poaceae under stress improves understanding of microbial functions in harsh environments.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/6966e73f13bf7a6f02bffe57https://doi.org/10.3390/microorganisms14010165
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