Related Experiment Video
Updated: Dec 14, 2025

Measuring Phosphorus Release in Laboratory Microcosms for Water Quality Assessment
Published on: July 22, 2019
Root architectural tradeoffs for water and phosphorus acquisition
Melissa D Ho1, Juan Carlos Rosas2, Kathleen M Brown1
1Intercollege Program in Plant Physiology, Pennsylvania State University, University Park, PA 16802 USA.
Abstract:
Root architectural traits that increase topsoil foraging are advantageous for phosphorus acquisition but may incur tradeoffs for the acquisition of deep soil resources such as water. To examine this relationship, common bean genotypes contrasting for rooting depth were grown in the field and in the greenhouse with phosphorus stress, water stress and combined phosphorus and water stress. In the greenhouse, water and phosphorus availability were vertically stratified to approximate field conditions, with higher phosphorus in the upper layer and more moisture in the bottom layer. Under phosphorus stress, shallow-rooted genotypes grew best, whereas under drought stress, deep-rooted genotypes grew best. In the combined stress treatment, the best genotype in the greenhouse had a dimorphic root system that permitted vigorous rooting throughout the soil profile. In the field, shallow-rooted genotypes surpassed deep-rooted genotypes under combined stress. This may reflect the importance of early vegetative growth in terminal drought environments. Our results support the hypothesis that root architectural tradeoffs exist for multiple resource acquisition, particularly when resources are differentially localised in the soil profile. Architectural plasticity and root dimorphism achieved through complementary growth of distinct root classes may be important means to optimise acquisition of multiple soil resources.
Related Concept Videos
Water and Mineral Acquisition
The Phosphorus Cycle
Responses to Drought and Flooding
Adaptations that Reduce Water Loss
Responses to Salt Stress
Epiphytes, Parasites, and Carnivores

