Nature Communications· 2025Q1
Functional diversity of soil microbial communities increases with ecosystem development
- 56citations
- Q1SCImago
- 2025year
Short summary
Soil microbial functional diversity increases with ecosystem development following land abandonment, while taxonomic diversity decreases, and nutrient cycling repertoires specialize.
AI-generated from the title and abstract; the full text is not read.
Key points
- Soil microbial functional diversity increases during succession after land abandonment, contrasting with decreasing taxonomic diversity.
- Microbial communities exhibit threshold dynamics in response to land-use change.
- Specialization of microbial nutrient (C-N-P) cycling genetic repertoires occurs, reducing genetic redundancy.
- Fungal functional diversity is directly linked to higher microbial carbon cycling capacity.
- Litter quality provides a mechanistic link between plant and soil microbial communities during succession.
AI-generated from the title and abstract; the full text is not read.
Abstract
Land abandonment is the single largest process of land-use change in the Global North driving succession and afforestation at continental scales, but assessing its impacts on soil microbial communities remains a challenge. Here, we establish a nationwide successional gradient of paired grassland and forest sites to track developments in microbial structure and functioning following land abandonment and gradual land-use change to forests. We show that microbes generally respond through threshold dynamics, leading to increasing functional but decreasing taxonomic diversity. Succession also entailed specialization of microbial nutrient (C-N-P) cycling genetic repertoires while decreasing genetic redundancy. This highlights a putative trade-off between two desirable ecosystem properties: functional diversity and functional redundancy. Fungal functional diversity underpins higher microbial C-cycling capacity, underscoring the link between functional traits and ecosystem processes. Changing litter quality similarly provides a mechanistic link between plant and microbial communities despite otherwise largely decoupled successional developments above- and belowground. While land abandonment is frequently touted as an opportunity to increase biodiversity and carbon storage, our results show that deeper knowledge about the multifaceted development of soil microbial communities and their links to plant communities during succession may be needed to fully grasp the impacts of global land abandonment processes.
The authors' abstract, as published at the source. Nature Communications, 2025 · DOI ↗
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Field: Soil Science
Soil ScienceAgricultural and Biological Sciences