K. N. ANIL RAJ, Verena Gaugler, Mengsi Lu, Maren Schädel, Philipp Gaugler, Charlotte M. M. Grothaus, Ulrike A. Jochimsen, Athanasios Makris, Simon M. Bartsch, Anna M. Frentzen, Guizhen Liu, Michael Harings, Dorothea Fiedler, Henning J. Jessen, Gabriel Schaaf, Martina Katharina Ried
Abstract Plant yield is often maximized by the extensive use of mineral fertilizers, which, however, has severe environmental consequences. Phosphate is particularly problematic, as it represents a globally limited resource, and its runoff and soil erosion threaten open water bodies. Many crops engage in arbuscular mycorrhizal (AM) symbiosis with nutrient-acquiring fungi, aiding in the uptake of phosphate and other mineral nutrients. However, AM colonization is strongly reduced under high soil phosphate levels. A mechanistic understanding of phosphate sensing, phosphate starvation responses, and their connection to AM remains enigmatic. Here, we show that in Lotus japonicus , low-abundant, energy-rich inositol pyrophosphates act as master regulators of AM, orchestrating the crosstalk between phosphate starvation responses and plant root endosymbiosis. These findings hold promise for breeding nutrient-efficient crops.