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A model of biogeochemical cycles of carbon, nitrogen, and phosphorus including symbiotic nitrogen fixation and phosphatase production

机译:碳,氮和磷的生物地球化学循环模型,包括共生固氮和磷酸酶生成

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摘要

Global climate models have not yet considered the effects of nutrient cycles and limitation when forecasting carbon uptake by the terrestrial biosphere into the future. Using the principle of resource optimization, we here develop a new theory by which C, N, and P cycles interact. Our model is able to replicate the observed responses of net primary production to nutrient additions in N-limited, N- and P-colimited, and P-limited terrestrial environments. Our framework identifies a new pathway by which N-2 fixers can alter P availability: By investing in N-rich, phosphorus liberation enzymes (phosphatases), fixers can greatly accelerate soil P availability and P cycling rates. This interaction is critical for the successful invasion and establishment of N-2 fixers in an N-limited environment. We conclude that our model can be used to examine nutrient limitation broadly, and thus offers promise for coupling the biogeochemical system of C, N, and P to broader climate-system models.
机译:在预测未来地球生物圈的碳吸收量时,全球气候模型尚未考虑营养循环和限制的影响。利用资源优化的原理,我们在这里开发了一个新的理论,通过该理论,C,N和P循环相互作用。我们的模型能够复制在N限制,N和P限制以及P限制的陆地环境中观察到的净初级生产对营养添加的响应。我们的框架确定了N-2固定剂可以改变P利用率的新途径:通过投资富含N的磷释放酶(磷酸酶),固定剂可以大大提高土壤P的利用率和P的循环速率。这种相互作用对于在有限的N环境中成功入侵和建立N-2固定剂至关重要。我们得出的结论是,我们的模型可用于广泛地检查养分限制,因此为将C,N和P的生物地球化学系统与更广泛的气候系统模型耦合提供了希望。

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