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Rhizosphere processes are quantitatively important components of terrestrial carbon and nutrient cycles

机译:根际过程是陆地碳和营养循环的重要定量组成部分

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摘要

While there is an emerging view that roots and their associated microbes actively alter resource availability and soil organic matter (SOM) decomposition, the ecosystem consequences of such rhizosphere effects have rarely been quantified. Using a meta-analysis, we show that multiple indices of microbially mediated C and nitrogen (N) cycling, including SOM decomposition, are significantly enhanced in the rhizospheres of diverse vegetation types. Then, using a numerical model that combines rhizosphere effect sizes with fine root morphology and depth distributions, we show that root-accelerated mineralization and priming can account for up to one-third of the total C and N mineralized in temperate forest soils. Finally, using a stoichiometrically constrained microbial decomposition model, we show that these effects can be induced by relatively modest fluxes of root-derived C, on the order of 4% and 6% of gross and net primary production, respectively. Collectively, our results indicate that rhizosphere processes are a widespread, quantitatively important driver of SOM decomposition and nutrient release at the ecosystem scale, with potential consequences for global C stocks and vegetation feedbacks to climate.
机译:尽管有一种新的观点认为,根及其相关微生物会积极改变资源的可利用性和土壤有机质(SOM)的分解,但这种根际效应对生态系统的影响却很少被量化。使用荟萃分析,我们表明,微生物介导的碳和氮(N)循环的多个指数,包括SOM分解,在不同植被类型的根际中均得到显着增强。然后,使用结合了根际效应大小,良好的根系形态和深度分布的数值模型,我们表明,根系加速的矿化作用和引发作用可占温带森林土壤中总矿化碳和氮的三分之一。最后,使用化学计量约束的微生物分解模型,我们表明这些影响可以由根系C的相对适度的通量引起,分别约为总初级生产量和净初级生产量的4%和6%。总体而言,我们的结果表明,在生态系统范围内,根际过程是SOM分解和养分释放的一个广泛的,数量上重要的驱动因素,对全球碳储量和植被对气候的反馈具有潜在的影响。

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