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Research | Open Access

Topography modulates effects of nitrogen deposition on microbial resource limitation in a nitrogen-saturated subtropical forest

Hao Chen1,2,3Junjie Tang2,3Xibin Sun1Kayan Ma1Huaihai Chen1Dejun Li2,3( )
State Key Laboratory of Biocontrol, School of Ecology, Sun Yat-sen University, 510275, Guangzhou, China
Key Laboratory of Agro-ecological Processes in Subtropical Region, Institute of Subtropical Agriculture, Chinese Academy of Sciences, 410125, Changsha, Hunan, China
Huanjiang Observation and Research Station for Karst Ecosystems, Institute of Subtropical Agriculture, Chinese Academy of Sciences, 547100, Huanjiang, China
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Abstract

Background

Nitrogen (N) saturation theory proposes that an ecosystem might switch from N limitation to carbon (C), phosphorus (P), or other nutrient limitations if it receives continuous N input. Yet, after N limitation is removed, which nutrient is the most limited and whether topography modulates such change is rarely tested at a microbial level. Here, we conducted a two-year N addition experiment under two different topography positions (i.e. a slope and a valley) in a N-saturated subtropical forest. Soil enzyme activity was measured, and ecoenzymatic stoichiometry indexes were calculated as indicators of microbial resource limitation.

Results

In the valley, two-year N addition changed the activity of all studied enzymes to various degrees. As a result, microbial C limitation was aggravated in the valley, and consequently microbial decomposition of soil labile organic C increased, but microbial P limitation was alleviated due to the stoichiometry balance. On the slope, however, N addition did not significantly change the activity of the studied enzymes, and did not alter the status of microbial resource limitation.

Conclusions

These results indicate that C is a more limited element for microbial growth than P after removing N limitation, but we also highlight that topography can regulate the effect of N deposition on soil microbial resource limitation in subtropical forests. These findings provide useful supplements to the N saturation theory.

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Forest Ecosystems
Article number: 68
Cite this article:
Chen H, Tang J, Sun X, et al. Topography modulates effects of nitrogen deposition on microbial resource limitation in a nitrogen-saturated subtropical forest. Forest Ecosystems, 2021, 8(4): 68. https://doi.org/10.1186/s40663-021-00341-9

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Received: 08 July 2021
Accepted: 27 August 2021
Published: 12 October 2021
© The Author(s) 2021.

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