Related Experiment Video
Updated: Sep 3, 2026

Production of Arbuscular Mycorrhizal (AM) Fungal Inoculum and Phenotypic Evaluation of Rice and AM Symbiosis Under Saline Conditions
Published on: March 14, 2025
Elevated CO2 reinforces PT11-dependent symbiotic phosphate uptake to reprogram root nutrient acquisition in rice
Chai Hao Chiu1, Mette Grønlund2, Thomas Christian de Bang2
1Crop Science Centre, Department of Plant Sciences, University of Cambridge, Cambridge CB3 0LE, United Kingdom.
Abstract:
Plants acquire inorganic phosphate (Pi) either directly through their roots or through symbiosis with arbuscular mycorrhizal (AM) fungi, and the direct uptake pathway is downregulated when the symbiosis establishes. As atmospheric CO2 concentrations rise, it is critical to understand how increased carbon availability alters plant nutrient acquisition strategies, with implications for crop productivity and carbon sequestration alike. Here, we investigated the interaction between elevated CO2, soil Pi availability, and AM symbiosis in the major cereal crop rice. Elevated CO2 enhanced mycorrhizal colonization, phosphorus uptake, and crop biomass. We employed the rice pt11 mutant, which is defective in symbiotic Pi transport, in combination with split-root and radiotracer approaches to demonstrate that suppression of the direct Pi uptake pathways occurs locally in colonized roots, requiring functional symbiotic Pi transport. Likewise, changes in root architecture-notably reduced fine lateral root development-occur with local regulation dependent on processes downstream of PT11. Transcriptomic analyses identify symbiotic Pi transport as a regulatory checkpoint of the suppression of direct nutrient uptake and the progression of the mycorrhizal transcriptional program. Together, these findings reveal that in rice, rising CO2 enhances AM symbiosis not necessarily by activating canonical symbiosis signaling pathways, but rather by reinforcing symbiotic Pi uptake through enhanced carbon availability, thereby reshaping root nutrient acquisition. This work provides a mechanistic framework for integrating plant-microbe interactions into strategies aimed at sustaining crop productivity and managing carbon in a high-CO2 world.
Related Concept Videos
Key Elements for Plant Nutrition
Water and Mineral Acquisition
Microbe-Plant Interactions

