Soil and Tillage Research· 2026Q1
Salinity constrains rhizosphere-driven soil carbon mineralization through shifts in microbial communities and enzyme activities
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- Q1SCImago
- 2026year
Short summary
Elevated salinity significantly reduces soil carbon mineralization, with a 19.41% decrease observed in rhizosphere soil under high-salinity conditions compared to low-salinity.
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Key points
- Elevated salinity significantly inhibited soil C mineralization in both rhizosphere and bulk soils.
- Under high salinity, rhizosphere C mineralization decreased by 19.41% compared to low-salinity conditions.
- Salinity reduced hydrolytic enzyme activities and shifted microbial communities towards salt-tolerant, copiotrophic taxa.
- The typical rhizosphere advantage in C mineralization was diminished under medium and high salinity levels.
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Abstract
Functional assessment of how the rhizosphere regulates soil carbon (C) mineralization is critical for predicting ecosystem C dynamics under global climate change. However, the mechanisms by which rhizosphere-mediated microbial traits and extracellular enzyme activities influence soil C mineralization under saline conditions remain poorly understood. Here, we compared C mineralization and associated biotic and abiotic drivers in rhizosphere and bulk soils across three salinity levels in a saline–alkali ecosystem. We found that elevated salinity significantly inhibited C mineralization in both soil compartments. Under medium- and high-salinity levels, cumulative C mineralization in the rhizosphere significiantly decreased by 11.67% and 19.41%, respectively, relative to low-salinity, corresponding to declines in hydrolytic enzyme activities and bacterial oligotroph-to-copiotroph (Oli/Cop) ratios, along with an increase in salt-tolerant copiotrophic taxa. Moreover, network analysis showed that 58.88% of bacterial and 45.70% of fungal ASVs were positively correlated with SOC and C mineralization but negatively correlated with salinity. Under low-salinity, rhizosphere soils exhibited significantly higher C mineralization than bulk soils, whereas this rhizosphere advantage was no longer statistically detectable under medium- and high-salinity levels. As salinity increased, fungal communities in the rhizosphere shifted toward oligotrophic taxa, whereas copiotrophic fungi dominated in bulk soil, utilizing sporadic labile C sources to sustain metabolic activity and potentially offsetting salinity-induced suppression of C mineralization. Overall, salinity constrained soil C cycling by limiting C input, suppressing hydrolytic enzyme activity, and altering microbial functional groups. Although the rhizosphere effect enhanced local enzymatic and microbial activities, salinity-induced physiological constraints dominated, ultimately leading to an overall reduction in soil C mineralization. These findings provide a functional assessment of the rhizosphere-soil-microbe continuum under salinity stress, revealing how shifts in microbial life-history strategies and enzyme activities constrain soil carbon mineralization. Overall, our findings provide new insights into the mechanisms by which salinity regulates rhizosphere-driven soil C mineralization and support the development of rhizosphere-oriented management strategies to sustain vegetation restoration and soil carbon sequestration in saline ecosystems.
The authors' abstract, as published at the source. Soil and Tillage Research, 2026 · DOI ↗
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Field: Soil Science
Soil ScienceAgricultural and Biological Sciences