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January 23, 2026Microorganisms0 citationsOpen Access

Synthetic Microbial Communities Enhance Artificial Cyanobacterial Crusts Formation via Spatiotemporal Synergy

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QLQi LiPZPingting ZhuGTGe Tian

Key Points

  • The aim is to examine how synthetic microbial communities (SynComs) influence artificial cyanobacterial crusts formation and their underlying mechanisms.
  • Investigated three synthetic microbial communities focused on exopolysaccharide, siderophore production, and nitrogen fixation.
  • Conducted the study in a controlled laboratory environment with a light/dark cycle.
  • Measured chlorophyll-a content, soil organic matter, and ammonium nitrogen dynamics over a 24-day cultivation period.
  • EPS-producing and nitrogen-fixing SynComs increased chlorophyll-a content by 16.0–16.3%.
  • Soil organic matter content rose by 9.1% to 27.3% with SynComs treatment.
  • All three SynComs significantly boosted exopolysaccharide content by 14.1–19.2%.
  • Urease activity increased by 6.7% with siderophore-producing bacteria.
  • SynComs accelerated microbial colonization with a 24.1% and 43.0% increase in microbial gene copy number.

Abstract

Artificial cyanobacterial crusts (ACCs) are a potentially effective biological strategy for combating desertification. However, while functional microorganisms influence ACCs formation efficiency, research on their role is limited, and their underlying promotion mechanisms remain unclear. Here, we investigated the effects of three functional synthetic microbial communities (SynComs), each dominated by microorganisms specialized in exopolysaccharide (EPS) production (3 strains), siderophore production (3 strains), or nitrogen fixation (4 strains), on ACCs formation following inoculation with Microcoleus vaginatus. This study was carried out in a controlled laboratory setting with a 12 h light/dark cycle and a light intensity of 2400–2700 lux. Following a 24-day cultivation period, EPS-producing or nitrogen-fixing SynComs significantly increased the chlorophyll-a content by 16.0–16.3%. Except for the nitrogen-fixing bacteria treatment, other SynComs enhanced the soil organic matter content of ACCs by 9.1% to 27.3%. The content of EPS was significantly improved by all three SynComs by 14.1~19.2%. Urease activity rose by 6.7% when siderophore-producing bacteria were added. The impacts of SynComs on ammonium nitrogen (NH4+-N) showed different temporal dynamics: nitrogen-fixing SynComs significantly increased NH4+-N early (≤10 days), while EPS-producing and siderophore-producing SynComs enhanced accumulation later (17–24 days). SynComs inoculation markedly accelerated cyanobacterial and general microbial colonization and growth. In comparison to day 0, the 16S rRNA gene copy number of ACCs increased by 24.1% and 43.0%, respectively, in the EPS-producing and nitrogen-fixing SynComs. Additionally, correlation analysis showed that SynComs transformed the weak correlations in the control into a strong positive correlation between NH4+-N and both Chl-a and microbial biomass. Our findings demonstrate SynComs, particularly the EPS-producing or nitrogen-fixing SynComs, enhance ACCs formation through elucidated mechanisms, providing a theoretical basis for optimizing ACCs-based desertification control strategies.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69731005c8125b09b0d1fc82https://doi.org/10.3390/microorganisms14010243
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