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Soil microbial CNP and respiration responses to organic matter and nutrient additions: Evidence from a tropical soil incubation

Evidence from a tropical soil incubation
Authors: Bertrand Guenet; Josep Peñuelas; M. Francesca Cotrufo; Ivan A. Janssens; Samuel Bodé; Sara Marañón-Jiménez; Sara Marañón-Jiménez; +7 Authors

Soil microbial CNP and respiration responses to organic matter and nutrient additions: Evidence from a tropical soil incubation

Abstract

Soil nutrient availability has a strong influence on the fate of soil carbon (C) during microbial decomposition, contributing to Earth's C balance. While nutrient availability itself can impact microbial physiology and C partitioning between biomass and respiration during soil organic matter decomposition, the availability of labile C inputs may mediate the response of microorganisms to nutrient additions. As soil organic matter is decomposed, microorganisms retain or release C, nitrogen (N) or phosphorus (P) to maintain a stoichiometric balance. Although the concept of a microbial stoichiometric homeostasis has previously been proposed, microbial biomass CNP ratios are not static, and this may have very relevant implications for microbial physiological activities. Here, we tested the hypothesis that N, P and potassium (K) nutrient additions impact C cycling in a tropical soil due to microbial stoichiometric constraints to growth and respiration, and that the availability of energy-rich labile organic matter in the soil (i.e. leaf litter) mediates the response to nutrient addition. We incubated tropical soil from French Guiana with a ¹³C labeled leaf litter addition and with mineral nutrient additions of +K, +N, +NK, +PK and +NPK for 30 days. We found that litter additions led to a ten-fold increase in microbial respiration and a doubling of microbial biomass C, along with greater microbial N and P content. We found some evidence that P additions increased soil CO² fluxes. Additionally, we found microbial biomass CP and NP ratios varied more widely than CN in response to nutrient and organic matter additions, with important implications for the role of microorganisms in C cycling. The addition of litter did not prime soil organic matter decomposition, except in combination with +NK fertilization, indicating possible P-mining of soil organic matter in this P-poor tropical soil. Together, these results point toward an ultimate labile organic substrate limitation of soil microorganisms in this tropical soil, but also indicate a complex interaction between C, N, P and K availability. This highlights the difference between microbial C cycling responses to N, P, or K additions in the tropics and explains why coupled C, N and P cycling modeling efforts cannot rely on strict microbial stoichiometric homeostasis as an underlying assumption.

Countries
Spain, France, Austria, United States, Belgium, Austria
Keywords

[SDE] Environmental Sciences, 570, 550, NITROGEN LIMITATION, 910, STOICHIOMETRY, BIOMASS, LITTER DECOMPOSITION, CARBON-USE EFFICIENCY, Microbial stoichiometry, 106026 Ecosystem research, SDG 15 – Leben an Land, 13C, Biology, SDG 15 - Life on Land, 106022 Mikrobiologie, Agricultural and Veterinary Sciences, Tropics, Agronomy & Agriculture, PLANT LITTER, RAIN-FOREST, Soil respiration, Biological Sciences, TERRESTRIAL ECOSYSTEMS, [SDE.BE] Environmental Sciences/Biodiversity and Ecology, Soil sciences, PHOSPHORUS, 106026 Ökosystemforschung, Priming, Soil Sciences, [SDE]Environmental Sciences, 106022 Microbiology, CNP, [SDE.BE]Environmental Sciences/Biodiversity and Ecology, Environmental Sciences, TALLGRASS PRAIRIE

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citations
This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Citations provided by BIP!
popularity
This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
BIP!Popularity provided by BIP!
influence
This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Influence provided by BIP!
impulse
This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network.
BIP!Impulse provided by BIP!
70
Top 1%
Top 10%
Top 10%
Green
hybrid