The coupling of carbon cycle and nitrogen cycle drives the food web structure and biogeochemistry of an ecosystem. However, across precipitation gradients, there may be a shift in C pool and N pool from above- to belowground because of shifting plant stoichiometry and allocation. Based on previous evidence, biomass allocation to roots should increase with aridity, while leaf [N] should increase. If their effect sizes are equal, they should cancel each other out, and the above- and belowground proportions of the N would remain constant. Here, we present the first study to explicitly compare above- and belowground pool sizes of N and C within predominant plant species along precipitation gradients. Biomass and nutrient concentrations of leave...
Understanding leaf stoichiometric patterns is crucial for improving predictions of plant responses ...
Clarifying the response of community and dominance species to climate change is crucial for disentan...
1. Combining nutrient dynamics (plant nutrient uptake and soil fertility) can help uncover mechanism...
The coupling of carbon cycle and nitrogen cycle drives the food web structure and biogeochemistry of...
The coupling of carbon cycle and nitrogen cycle drives the food web structure and biogeochemistry of...
Understanding how plant ecophysiological traits of coexisting species within a community respond to ...
<div><p>Plant biomass allocation between below- and above-ground parts can actively adapt to the amb...
The allocation and stoichiometry of plant nutrients in leaves reflect fundamental ecosystem processe...
Plant biomass allocation between below- and above-ground parts can actively adapt to the ambient gro...
Plant biomass allocation between below- and above-ground parts can actively adapt to the ambient gro...
Plant biomass allocation between below- and above-ground parts can actively adapt to the ambient gro...
Plant carbon (C) and nitrogen (N) stoichiometry play an important role in the maintenance of ecosyst...
Determining large-scale patterns of plant elemental concentrations and stoichiometry along environme...
There are two important allocation hypotheses in plant biomass allocation: allometric and isometric....
Abstract: Aims Plant stoichiometry is known to influence ecological processes and element cycles in ...
Understanding leaf stoichiometric patterns is crucial for improving predictions of plant responses ...
Clarifying the response of community and dominance species to climate change is crucial for disentan...
1. Combining nutrient dynamics (plant nutrient uptake and soil fertility) can help uncover mechanism...
The coupling of carbon cycle and nitrogen cycle drives the food web structure and biogeochemistry of...
The coupling of carbon cycle and nitrogen cycle drives the food web structure and biogeochemistry of...
Understanding how plant ecophysiological traits of coexisting species within a community respond to ...
<div><p>Plant biomass allocation between below- and above-ground parts can actively adapt to the amb...
The allocation and stoichiometry of plant nutrients in leaves reflect fundamental ecosystem processe...
Plant biomass allocation between below- and above-ground parts can actively adapt to the ambient gro...
Plant biomass allocation between below- and above-ground parts can actively adapt to the ambient gro...
Plant biomass allocation between below- and above-ground parts can actively adapt to the ambient gro...
Plant carbon (C) and nitrogen (N) stoichiometry play an important role in the maintenance of ecosyst...
Determining large-scale patterns of plant elemental concentrations and stoichiometry along environme...
There are two important allocation hypotheses in plant biomass allocation: allometric and isometric....
Abstract: Aims Plant stoichiometry is known to influence ecological processes and element cycles in ...
Understanding leaf stoichiometric patterns is crucial for improving predictions of plant responses ...
Clarifying the response of community and dominance species to climate change is crucial for disentan...
1. Combining nutrient dynamics (plant nutrient uptake and soil fertility) can help uncover mechanism...