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从汇流到流动:了解变化世界中土壤碳循环的 PROMISE 框架。

From pools to flow: The PROMISE framework for new insights on soil carbon cycling in a changing world.

机构信息

Department of Biology and Ecology Center, Utah State University, Logan, UT, USA.

Environmental Sciences Division and Climate Change Science Institute, Oak Ridge National Laboratory, Oak Ridge, TN, USA.

出版信息

Glob Chang Biol. 2020 Dec;26(12):6631-6643. doi: 10.1111/gcb.15365. Epub 2020 Oct 16.

Abstract

Soils represent the largest terrestrial reservoir of organic carbon, and the balance between soil organic carbon (SOC) formation and loss will drive powerful carbon-climate feedbacks over the coming century. To date, efforts to predict SOC dynamics have rested on pool-based models, which assume classes of SOC with internally homogenous physicochemical properties. However, emerging evidence suggests that soil carbon turnover is not dominantly controlled by the chemistry of carbon inputs, but rather by restrictions on microbial access to organic matter in the spatially heterogeneous soil environment. The dynamic processes that control the physicochemical protection of carbon translate poorly to pool-based SOC models; as a result, we are challenged to mechanistically predict how environmental change will impact movement of carbon between soils and the atmosphere. Here, we propose a novel conceptual framework to explore controls on belowground carbon cycling: Probabilistic Representation of Organic Matter Interactions within the Soil Environment (PROMISE). In contrast to traditional model frameworks, PROMISE does not attempt to define carbon pools united by common thermodynamic or functional attributes. Rather, the PROMISE concept considers how SOC cycling rates are governed by the stochastic processes that influence the proximity between microbial decomposers and organic matter, with emphasis on their physical location in the soil matrix. We illustrate the applications of this framework with a new biogeochemical simulation model that traces the fate of individual carbon atoms as they interact with their environment, undergoing biochemical transformations and moving through the soil pore space. We also discuss how the PROMISE framework reshapes dialogue around issues related to SOC management in a changing world. We intend the PROMISE framework to spur the development of new hypotheses, analytical tools, and model structures across disciplines that will illuminate mechanistic controls on the flow of carbon between plant, soil, and atmospheric pools.

摘要

土壤是最大的陆地有机碳库,未来一个世纪,土壤有机碳(SOC)的形成和损失之间的平衡将引发强大的碳-气候反馈。迄今为止,预测 SOC 动态的努力依赖于基于库的模型,这些模型假设 SOC 类具有内部同质的物理化学特性。然而,新出现的证据表明,土壤碳周转不是由碳输入的化学性质主导,而是由土壤环境中空间异质性对微生物获取有机物的限制所控制。控制碳物理化学保护的动态过程很难转化为基于库的 SOC 模型;因此,我们面临着如何从机制上预测环境变化将如何影响土壤和大气之间碳的迁移的挑战。在这里,我们提出了一个新的概念框架来探索对地下碳循环的控制:土壤环境中有机物相互作用的概率表示(PROMISE)。与传统的模型框架不同,PROMISE 并不试图定义由共同热力学或功能属性统一的碳库。相反,PROMISE 概念考虑了 SOC 循环速率是如何受到影响微生物分解者和有机物之间接近度的随机过程的控制,重点是它们在土壤基质中的物理位置。我们通过一个新的生物地球化学模拟模型来说明这个框架的应用,该模型追踪了单个碳原子在与环境相互作用时的命运,经历生化转化并穿过土壤孔隙空间。我们还讨论了 PROMISE 框架如何重塑与变化世界中 SOC 管理相关的问题的对话。我们希望 PROMISE 框架能够激发新的假说、分析工具和模型结构的发展,这些将阐明植物、土壤和大气库之间碳流动的机制控制。

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