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 ...
With anthropogenic nutrient inputs to ecosystems increasing globally, there are long-standing, funda...
Heterotrophic microorganisms are commonly thought to be stoichiometrically homeostatic but their sto...
Microbial biomass turnover and the associated recycling of carbon (Cmic), nitrogen (Nmic) and phosph...
Soil nutrient availability has a strong influence on the fate of soil carbon (C) during microbial de...
Soil nutrient availability has a strong influence on the fate of soil carbon (C) during microbial de...
Soil nutrient availability has a strong influence on the fate of soil carbon (C) during microbial de...
Microbial decomposition of soil organic matter (SOM) can be accelerated or reduced by the combined e...
Soil carbon (C) and nitrogen (N) cycles are inextricably linked, yet the impacts of N availability u...
Nutrients constrain the soil carbon cycle in tropical forests, but we lack knowledge on how these co...
<div><p>Human-caused alterations of the carbon and nutrient cycles are expected to impact tropical e...
The cycling of soil organic matter (SOM) and carbon (C) within the soil is governed by the presence ...
With anthropogenic nutrient inputs to ecosystems increasing globally, there are long-standing, funda...
Heterotrophic microorganisms are commonly thought to be stoichiometrically homeostatic but their sto...
Microbial biomass turnover and the associated recycling of carbon (Cmic), nitrogen (Nmic) and phosph...
Soil nutrient availability has a strong influence on the fate of soil carbon (C) during microbial de...
Soil nutrient availability has a strong influence on the fate of soil carbon (C) during microbial de...
Soil nutrient availability has a strong influence on the fate of soil carbon (C) during microbial de...
Microbial decomposition of soil organic matter (SOM) can be accelerated or reduced by the combined e...
Soil carbon (C) and nitrogen (N) cycles are inextricably linked, yet the impacts of N availability u...
Nutrients constrain the soil carbon cycle in tropical forests, but we lack knowledge on how these co...
<div><p>Human-caused alterations of the carbon and nutrient cycles are expected to impact tropical e...
The cycling of soil organic matter (SOM) and carbon (C) within the soil is governed by the presence ...
With anthropogenic nutrient inputs to ecosystems increasing globally, there are long-standing, funda...
Heterotrophic microorganisms are commonly thought to be stoichiometrically homeostatic but their sto...
Microbial biomass turnover and the associated recycling of carbon (Cmic), nitrogen (Nmic) and phosph...