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Review
. 2021 Apr;230(1):60-65.
doi: 10.1111/nph.17082. Epub 2020 Dec 10.

Root effects on soil organic carbon: a double-edged sword

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Free article
Review

Root effects on soil organic carbon: a double-edged sword

Feike A Dijkstra et al. New Phytol. 2021 Apr.
Free article

Abstract

From recent developments on how roots affect soil organic carbon (SOC) an apparent paradox has emerged where roots drive SOC stabilization causing SOC accrual, but also SOC destabilization causing SOC loss. We synthesize current results and propose the new Rhizo-Engine framework consisting of two linked components: microbial turnover and the soil physicochemical matrix. The Rhizo-Engine is driven by rhizodeposition, root turnover, and plant uptake of nutrients and water, thereby accelerating SOC turnover through both stabilization and destabilization mechanisms. This Rhizo-Engine framework emphasizes the need for a more holistic approach to study root-driven SOC dynamics. This framework would provide better understanding of plant root effects on soil carbon sequestration and the sensitivity of SOC stocks to climate and land-use changes.

Keywords: microbial turnover; mineral associated organic carbon; nutrient and water uptake; rhizodeposition; rhizosphere priming effect; soil aggregation.

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References

    1. Boilard G, Bradley RL, Paterson E, Sim A, Brown LK, George TS, Bainard L, Carubba A. 2019. Interaction between root hairs and soil phosphorus on rhizosphere priming of soil organic matter. Soil Biology and Biochemistry 135: 264-266.
    1. Cheng W, Parton WJ, Gonzalez-Meler MA, Phillips R, Asao S, McNickle GG, Brzostek E, Jastrow JD. 2014. Synthesis and modeling perspectives of rhizosphere priming. New Phytologist 201: 31-44.
    1. Clarholm M, Skyllberg U, Rosling A. 2015. Organic acid induced release of nutrients from metal-stabilized soil organic matter - the unbutton model. Soil Biology and Biochemistry 84: 168-176.
    1. Cotrufo MF, Wallenstein MD, Boot CM, Denef K, Paul E. 2013. The Microbial Efficiency-Matrix Stabilization (MEMS) framework integrates plant litter decomposition with soil organic matter stabilization: do labile plant inputs form stable soil organic matter? Global Change Biology 19: 988-995.
    1. Craig ME, Turner BL, Liang C, Clay K, Johnson DJ, Phillips RP. 2018. Tree mycorrhizal type predicts within-site variability in the storage and distribution of soil organic matter. Global Change Biology 24: 3317-3330.

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