PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 28, 2026Environmental Microbiome0 citationsOpen Access

Exogenous resources drive convergent successional processes within soil microbial food web in two soil types

YCYu-Jia CaiXi’an Jiaotong-Liverpool UniversityYCYuhai ChangMinistry of ScienceJRJessica Louise RayNORCE Research AS

Key Points

  • Investigate how exogenous resource addition affects microbial community dynamics in different soil types.
  • Conducted a 30-day microcosm experiment in urine-amended soils under maize and woodland land uses.
  • Analyzed primary microbial functional groups: bacteria, fungi, and protists.
  • Measured OTU richness and Shannon diversity before and after organic amendment.
  • Straw addition reduced bacteria richness by 8% and diversity by 15%, fungi richness by 26% and diversity by 21%, and protists richness by 21% and diversity by 29%.
  • Maize soils favored bacteria-dominated networks while woodlands had fungal hubs.
  • Both land uses exhibited decreased α-diversity and increased network complexity after amendments.

Abstract

Soil microorganisms mediate critical ecosystem processes, including nutrient cycling and climate regulation. However, the extent to which their functional resilience and microbial food web dynamics respond uniformly to organic amendment across two land-use types remain poorly understood. In this study, we conducted a 30-day microcosm experiment to investigate how exogenous resources addition restructures the assembly of primary microbial functional groups (bacteria, fungi, and protists) in urine-amended soils under contrasting land-use regimes: intensively managed maize fields and natural woodlands. Results showed that straw addition consistently reduced both OTU richness and Shannon diversity of bacteria (by 8% and15%, respectively), fungi (26% and 21%), and protists (21% and 29%) in both soil types, yet enhanced cross-domain microbial interactions. Co-occurrence network analysis revealed variation in trophic interaction based on network parameters: maize soils fostered bacteria-dominated networks, whereas fungal hubs dominated in woodland systems. Deterministic processes predominantly govern bacterial community assembly, contrasting with the stochastic dominance observed in fungal and protist communities. Notably, both land use regimes showed consistent decreases in α-diversity, increased network complexity, and shifts toward similar assembly processes despite initial differences in community structure. Our findings demonstrate that organic amendments can override land-use legacies in shaping microbial community dynamics, highlighting the integrated impact of availability and biotic interactions in driving soil microbial food web dynamics.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Cai et al. (2026) studied this question.

synapsesocial.com/papers/69a286da0a974eb0d3c022d9https://doi.org/10.1186/s40793-026-00872-0
Ask AI
Helpful
Bookmark
Share
View Full Paper