Phosphorus (P) is essential for plant growth and development, yet in most soils phosphate (Pi) is poorly available. To compensate, farmers apply excess P fertilizers, causing environmental pollution and depletion of finite phosphate reserves. In rice, a staple for over half the world’s population, low Pi availability limits growth, while seed phytate - an abundant P storage form - reduces micronutrient bioavailability for humans and animals. Enhancing phosphorus-use efficiency (PUE) and reducing seed phytate are therefore critical for sustainable rice production, improved nutrition, and environmental protection.
This project focuses on elucidating the roles of inositol pyrophosphates (PP-InsPs) and their associated kinases, ITPK and VIH, in regulating phosphate signaling and homeostasis in rice. PP-InsPs are emerging as central signaling molecules controlling Pi sensing, transport, and allocation. By investigating their biochemical, molecular, and physiological functions, this research aims to uncover how PP-InsPs influence phosphate use efficiency and seed nutritional value without compromising plant immunity or growth.
Specific Objectives:
The project was structured around four interrelated objectives:
1. Biochemical characterization of rice ITPK and VIH homologs to understand enzymatic properties and regulation.
2. Identification and stereo-isomeric characterization of rice PP-InsPs to map their diversity and functional relevance.
3. Generation of transgenic rice lines with modified ITPK/VIH expression for in planta functional analysis.
4. Molecular, biochemical, and physiological characterization of transgenic lines to assess impacts on Pi homeostasis and seed phytate content.
Pathway to Impact:
The project bridges fundamental signaling research with applied crop improvement. Expected outcomes include: enhanced phosphorus-use efficiency, improved nutritional quality, and generation of genome-edited resources. Insights gained will support sustainable agriculture, reduced fertilizer reliance, and breeding of nutrient-efficient, climate-resilient rice, addressing global food security and environmental sustainability.