In situ carbon and nitrogen turnover dynamics in topsoils: a climate warming simulation study in an alpine ecosystem

IF 1.2 4区 农林科学 Q4 SOIL SCIENCE Soil Research Pub Date : 2023-01-01 DOI:10.1071/sr23053
I. Djukic, F. Zehetner, M. Horacek, M. H. Gerzabek
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Abstract

Context Climate change may affect ecosystem carbon (C) and nitrogen (N) cycling by accelerating C and N transformations in soil, which in turn can feed back to the climate system. These effects may be especially pronounced in cold regions, which are particularly sensitive to climate change, store significant amounts of soil organic C and harbour N-poor ecosystems. Still it is debated how C and N dynamics in high-elevation ecosystems will respond to rising temperatures.Aims We investigated the effects of climate warming and shifting vegetation zones on litter C and N turnover in a high-elevation ecosystem of the Austrian Alps.Methods We used high-to-low elevation soil translocation to simulate the combined effects of changing climatic conditions and shifting vegetation zones, and combined this with an in-situ decomposition experiment using 13C and 15N double-labelled litter material.Key results In our experiment, plant litter decomposition raised soil pH by up to one pH unit (5.7 to 6.7) within 15–20weeks, followed by a decrease below the initial pH values until the end of the experiment. Simulated mean annual soil warming of 1.5 and 2.7°C resulted in a significantly accelerated turnover of added maize-C, whereas maize-N persisted longer in the soils. The more resistant C pool (half-life 1–2years) responded much more strongly to experimental warming (100–190% increase in decomposition rate) compared to the labile pool (half-life 1–2weeks; 5–20% increase in decomposition rate). In contrast, simulated warming led to a significant decrease of N loss by mineralisation for both pools (change in half-life for labile maize straw N pool, 5.9 to 10.5 and 19.1days, respectively; and stabile maize straw N pool, 1386 to 1733 and 3466days, respectively).Conclusions Our results show that rising temperatures in alpine ecosystems may have contrasting effects on C and N dynamics in the short to medium term. This reflects very tight N cycling and underlines the importance of soil hydrological processes, such as water percolation and leaching, on the fate of N in such N-poor ecosystems.Implications The linkage between N cycling and soil hydrological processes should be accounted for in ecosystem modelling efforts.
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表层土壤原位碳氮转换动态:高寒生态系统气候变暖模拟研究
气候变化可能通过加速土壤中C和N的转化来影响生态系统的碳(C)和氮(N)循环,而土壤中C和N的转化反过来又可以反馈给气候系统。这些影响在对气候变化特别敏感、储存大量土壤有机碳和拥有缺氮生态系统的寒冷地区可能尤其明显。然而,高海拔生态系统中的碳和氮动态将如何应对不断上升的温度仍存在争议。目的研究气候变暖和植被带移动对奥地利阿尔卑斯高海拔生态系统凋落物C和N转换的影响。方法采用高、低海拔土壤迁移模拟气候条件变化和植被带移动的综合效应,并结合13C和15N双标签凋落物的原位分解实验。在我们的实验中,植物凋落物分解在15 - 20周内将土壤pH值提高了一个pH单位(5.7至6.7),然后下降到初始pH值以下,直到实验结束。模拟1.5和2.7°C的年平均土壤变暖导致添加的玉米-C的周转显著加快,而玉米- n在土壤中的持续时间更长。相对于不稳定池(半衰期1 - 2周;分解率提高5-20%)。相比之下,模拟变暖导致两个库的氮矿化损失显著减少(玉米秸秆氮库的半衰期变化,分别为5.9 ~ 10.5天和19.1天;玉米秸秆氮稳定库分别为1386 ~ 1733天和3466d)。结论气温升高对中短期高寒生态系统碳氮动态的影响存在差异。这反映了非常紧密的氮循环,并强调了土壤水文过程的重要性,例如水的渗透和淋滤,对这种缺氮生态系统中氮的命运。生态系统建模工作应考虑氮循环与土壤水文过程之间的联系。
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来源期刊
Soil Research
Soil Research SOIL SCIENCE-
CiteScore
3.20
自引率
6.20%
发文量
35
审稿时长
4.5 months
期刊介绍: Soil Research (formerly known as Australian Journal of Soil Research) is an international journal that aims to rapidly publish high-quality, novel research about fundamental and applied aspects of soil science. As well as publishing in traditional aspects of soil biology, soil physics and soil chemistry across terrestrial ecosystems, the journal welcomes manuscripts dealing with wider interactions of soils with the environment. Soil Research is published with the endorsement of the Commonwealth Scientific and Industrial Research Organisation (CSIRO) and the Australian Academy of Science.
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