Related Experiment Video
Updated: Sep 25, 2026

Isolation and Analysis of Microbial Communities in Soil, Rhizosphere, and Roots in Perennial Grass Experiments
Published on: July 24, 2018
Precipitation gradients restructure rhizosphere and bulk soil microbial communities and potential nitrogen-cycling
Miaoxian Yu1, Dongjie Hou1, Zhongwu Wang1
1College of Grassland Science, Inner Mongolia Agricultural University, Hohhot 010018, China.
Abstract:
Precipitation change can restructure microbially mediated soil nitrogen (N) cycling in water-limited grasslands, yet whether rhizosphere and bulk soils respond differently remains unclear. An in situ precipitation-gradient experiment in the desert steppe of Inner Mongolia combined soil physicochemical measurements, shotgun metagenomic sequencing, and piecewise structural equation modelling. Treatments included 50% reduced precipitation (W-50%), ambient precipitation (CK), 50% increased precipitation (W+50%), and 100% increased precipitation (W+100%). Soil water content was 37.2% higher under W+100% than under W-50%, whereas NO3--N was 55.5% lower under W+50% than under W-50%. Microbial α-diversity showed a significant treatment × soil compartment interaction, whereas N-cycling functional α-diversity did not differ significantly among precipitation treatments or soil compartments. Precipitation treatment explained 48.35% of microbial community variation and 38.41% of N-cycling gene variation, while soil compartment explained 8.88% and 11.16%, respectively. From W-50% to W+50%, Sphingomonas increased from 2.93% to 13.66% in bulk soil and from 5.14% to 16.87% in rhizosphere soil. Relative to CK, W-50% increased the relative abundances of narZ and norB by 152.5% and 46.6% but decreased those of nrfC and gltD by 27.2% and 7.9%. W+50% increased the relative abundance of ureC by 23.1% while decreasing those of amoB, nirD, and nirK by 56.9%, 31.3%, and 17.8%, respectively. Compared with bulk soil, rhizosphere soil had higher relative abundances of nrfA, ureB, gltB, and nifD. Piecewise SEM explained 86.8% of the variation in N-cycling functional profiles, with microbial community composition showing the strongest association (β = 0.710, P < 0.001). These findings show that precipitation gradients primarily reorganize microbial community composition and potential N-cycling functions, with distinct N-cycling gene profiles between rhizosphere and bulk soils.
Related Concept Videos
Soil Microbial Ecology
The Roles of Bacteria and Fungi in Plant Nutrition
Microbes and the Nitrogen Cycle
Microbes and Climate Change
Microenvironments
Microbial Mats

