Root System Architecture Reorganization Under Decreasing Soil Phosphorus Lowers Root System Conductance of Zea mays
Bauer, F. M.; Baker, D. N.; Giraud, M.; Baca Cabrera, J. C.; Vanderborght, J.; Lobet, G.; Schnepf, A.
Show abstract
The global supply of phosphorus is decreasing. At the same time, climate change reduces the water availability in most regions of the world. Insights on how decreasing phosphorus availability influences plant architecture is crucial to understand its influence on plant functional properties, such as the root systems water uptake capacity. In this study we investigated the structural and functional responses of Zea mays to varying phosphorus fertilization levels focusing especially on the root systems conductance. A rhizotron experiment with soils ranging from severe phosphorus deficiency to sufficiency was conducted. We measured architectural parameters of the whole plant and combined them with root hydraulic properties to simulate time-dependent root system conductance of growing plants under different phosphorus levels. We observed changes of the root system architecture, characterized by decreasing crown root elongation and reduced axial root radii with declining phosphorus availability. Modeling revealed that only plants with optimal phosphorus availability sustained a high root system conductance, while all other phosphorus levels led to a significantly lower root system conductance, both under light and severe phosphorus deficiency. We postulate that phosphorus deficiency initially enhances root system function for drought mitigation but eventually reduce biomass and impairs root development and water uptake in prolonged or severe cases of drought. Our results also highlight the fact that root system organization, rather than its total size, is critical to estimate important root functions.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- In silico evidence for the utility of parsimonious root phenotypes for improved vegetative growth and carbon sequestration under drought 96%
- Phenotypic Variation from Waterlogging in Multiple Perennial Ryegrass Varieties under Climate Change Conditions 96%
- A Proposed Drought Response Equation Added to the Münch-Horwitz Theory of Phloem Transport 95%
Similar papers in this journal
- RootSlice: a novel functional-structural model for root anatomical phenotypes 97%
- Integrating Load-Cell Lysimetry and Machine Learning for Prediction of Daily Plant Transpiration 96%
- Correlation between plant cell wall stiffening and root extension arrest phenotype in the combined abiotic stress of Fe and Al 94%
Similar papers in this journal
- Altered cell wall hydroxycinnamate composition impacts leaf and canopy-level CO2-uptake and water-use in rice 94%
- GRANAR, a new computational tool to better understand the functional importance of root anatomy 94%
- Large-scale field phenotyping using backpack LiDAR and GUI-based CropQuant-3D to measure structural responses to different nitrogen treatments in wheat 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.