Temperature sensitivity (Q10) and soil type influence carbon and nitrogen mineralization in temperate ecosystems

Abstract The temperature sensitivity of soil carbon (C) and nitrogen (N) mineralization commonly expressed as the Q 10 coefficient, plays a pivotal role in regulating soil–atmosphere greenhouse gas exchanges in temperate ecosystems. This review synthesizes findings from 181 peer-reviewed studies (1960–2025) to evaluate how soil properties, substrate quality, microbial traits, and land-use history interact to shape Q 10 dynamics under climatic warming. Using a structured, thematically coded literature review, we identify mechanistic pathways that govern mineralization responses across major temperate soil orders. Clay-rich soils with high short-range ordered (SRO) minerals consistently exhibit low Q 10 values (1.3–2.0) due to mineral protection of soil organic matter (SOM). In contrast, coarse-textured and disturbed soils exhibit elevated thermal sensitivity (> 3.0). Microbial C use efficiency (CUE), enzyme activity, and functional group composition further modulate mineralization responses, especially under seasonal freeze–thaw or rewetting events. Land-use transitions, including tillage, afforestation, and organic amendments, significantly alter Q 10 by altering aggregation, SOM accessibility, and microbial community structure. Despite advances, Earth system models often overlook the spatiotemporal heterogeneity of Q 10 , limiting prediction accuracy. We highlight the need for integrating depth-resolved mineralogical traits, microbial acclimation, and management history into climate–soil feedback frameworks. This synthesis advances a mechanistic foundation for improving biogeochemical models and informing soil-based climate mitigation strategies.

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Publication Details

Journal
Biogeochemistry
Published
2026-09-01
DOI
https://doi.org/10.1007/s10533-026-01368-2
Primary Topic
Soil Carbon and Nitrogen Dynamics
Type
article
Field-Weighted Citation Impact
0.00

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article

Temperature sensitivity (Q10) and soil type influence carbon and nitrogen mineralization in temperate ecosystems

Kamrun Nahar Sheuly, Zakaria M. Solaiman, Khalid Syfullah
Biogeochemistry
Soil Carbon and Nitrogen Dynamics
article

Temperature sensitivity (Q10) and soil type influence carbon and nitrogen mineralization in temperate ecosystems

Kamrun Nahar Sheuly, Zakaria M. Solaiman, Khalid Syfullah
article en

Abstract

Abstract The temperature sensitivity of soil carbon (C) and nitrogen (N) mineralization commonly expressed as the Q 10 coefficient, plays a pivotal role in regulating soil–atmosphere greenhouse gas exchanges in temperate ecosystems. This review synthesizes findings from 181 peer-reviewed studies (1960–2025) to evaluate how soil properties, substrate quality, microbial traits, and land-use history interact to shape Q 10 dynamics under climatic warming. Using a structured, thematically coded literature review, we identify mechanistic pathways that govern mineralization responses across major temperate soil orders. Clay-rich soils with high short-range ordered (SRO) minerals consistently exhibit low Q 10 values (1.3–2.0) due to mineral protection of soil organic matter (SOM). In contrast, coarse-textured and disturbed soils exhibit elevated thermal sensitivity (> 3.0). Microbial C use efficiency (CUE), enzyme activity, and functional group composition further modulate mineralization responses, especially under seasonal freeze–thaw or rewetting events. Land-use transitions, including tillage, afforestation, and organic amendments, significantly alter Q 10 by altering aggregation, SOM accessibility, and microbial community structure. Despite advances, Earth system models often overlook the spatiotemporal heterogeneity of Q 10 , limiting prediction accuracy. We highlight the need for integrating depth-resolved mineralogical traits, microbial acclimation, and management history into climate–soil feedback frameworks. This synthesis advances a mechanistic foundation for improving biogeochemical models and informing soil-based climate mitigation strategies.

Biogeochemistry
The University of Western Australia (AU), Sher-e-Bangla Agricultural University (BD)
University of Western Australia
Climate action
Openalex Percentile: Top 13%
Soil Carbon and Nitrogen Dynamics
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