Background and aims Growth, morphological traits, and mycorrhizal colonization of fine roots show high degree of plasticity in response to changes in nutrient availability, causing shifts in root nutrient-foraging strategy. However, little is known about how this plasticity associated with root branching orders respond to atmospheric nitrogen (N) deposition in subtropical coniferous forests. Methods We used soil block sampling method to examine the responses of six key root functional parameters (including three morphological traits (specific root length (SRL), root tissue density (RTD), and root diameter), two growth indices (total root length (TRL) and biomass) on an areal basis across five root orders, and ectomycorrhizal (EM) tip coloni...
Background: Nitrogen (N) deposition could influence plant stoichiometry and growth rate and thus alt...
International audienceForest dynamics are shaped by both abiotic and biotic factors. Trees associati...
Elevated nitrogen (N) deposition to tropical forests may accelerate ecosystem phosphorus (P) limitat...
Global nitrogen (N) deposition can affect root morphology, anatomy and thus the water uptake by tree...
Fine roots are essential for water and nutrient uptake in plants, but little is known about the vari...
Fine roots (< 2 mm in diameter) play an important role in belowground ecosystem processes, a...
We explored inorganic and organic N uptake patterns by dominant tree species in a subtropical planta...
Undergraduate Research Exper.Many factors affect the amount of mycorrhizal colonization in a plant, ...
The capacity to rapidly expand root systems to increase soil foraging is key for the survival of tre...
In most cases, both roots and mycorrhizal fungi are needed for plant nutrient foraging. Frequently, ...
1. Ectomycorrhizal (ECM) symbiosis is an evolutionary biological trait of higher plants for effec...
Knowledge of the responses of soil nitrogen (N) availability, fine root mass, production and turnove...
Absorptive root traits show remarkable cross-species variation, but major root trait dimensions acro...
While it is increasingly recognized that ectomycorrhizal (ECM) and arbuscular mycorrhizal (AM) tree ...
Research Highlights: This study identifies the nitrogen (N) deposition effect on understory plants b...
Background: Nitrogen (N) deposition could influence plant stoichiometry and growth rate and thus alt...
International audienceForest dynamics are shaped by both abiotic and biotic factors. Trees associati...
Elevated nitrogen (N) deposition to tropical forests may accelerate ecosystem phosphorus (P) limitat...
Global nitrogen (N) deposition can affect root morphology, anatomy and thus the water uptake by tree...
Fine roots are essential for water and nutrient uptake in plants, but little is known about the vari...
Fine roots (< 2 mm in diameter) play an important role in belowground ecosystem processes, a...
We explored inorganic and organic N uptake patterns by dominant tree species in a subtropical planta...
Undergraduate Research Exper.Many factors affect the amount of mycorrhizal colonization in a plant, ...
The capacity to rapidly expand root systems to increase soil foraging is key for the survival of tre...
In most cases, both roots and mycorrhizal fungi are needed for plant nutrient foraging. Frequently, ...
1. Ectomycorrhizal (ECM) symbiosis is an evolutionary biological trait of higher plants for effec...
Knowledge of the responses of soil nitrogen (N) availability, fine root mass, production and turnove...
Absorptive root traits show remarkable cross-species variation, but major root trait dimensions acro...
While it is increasingly recognized that ectomycorrhizal (ECM) and arbuscular mycorrhizal (AM) tree ...
Research Highlights: This study identifies the nitrogen (N) deposition effect on understory plants b...
Background: Nitrogen (N) deposition could influence plant stoichiometry and growth rate and thus alt...
International audienceForest dynamics are shaped by both abiotic and biotic factors. Trees associati...
Elevated nitrogen (N) deposition to tropical forests may accelerate ecosystem phosphorus (P) limitat...