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Updated: Jun 10, 2026

Breeding by Design for Functional Rice with Genome Editing Technologies
Published on: January 3, 2025
Improving low-phosphate tolerance via tissue-specific CRISPR/Cas9 knockout to balance growth and stress responses in
Guangbo Wei1, Zhengwei Huang1, Shuman Wang1
1State Key Laboratory of Plant Environmental Resilience, College of Life Sciences, Zhejiang University, Hangzhou, Zhejiang 310058, China.
Abstract:
Balancing growth and stress responses is critical for improving crop stress tolerance. Inorganic phosphate (Pi) deficiency reduces agricultural yields. Plants have evolved a Pi-starvation response (PSR) network that coordinates growth and responds to fluctuating environmental Pi levels. Null mutations or whole-plant knockdown of PSR repressor genes, such as PHOSPHATE2 (OsPHO2) and OsSPX (Syg1, Pho81, XPR1) family genes, enhance Pi absorption and transfer but disrupt Pi homeostasis, inhibiting growth and reducing yields. To overcome this, we developed a CRISPR/Cas9 tissue-specific knockout (TSKO) system for efficient, vascular-specific somatic knockout of OsPHO2 in rice (Oryza sativa) cv. "Nipponbare" across several generations. The plants showed moderately increased Pi concentrations, maintained Pi homeostasis in hydroponic culture, and increased effective tiller number and grain yield in a Pi-deficient paddy. Vascular-specific OsPHO2 knockout moderately increased OsPHO2-repressed, vascular-expressed, Pi-starvation-induced signaling in roots and alleviated disordered PSR in roots and leaves. Vascular-specific knockout of OsPHO2 or OsSPX1/2 in the Zhonghua 11 background gave similar results. Field trials confirmed the enhanced low-Pi tolerance of TSKO plants in a Pi-deficient paddy and these plants showed normal growth in a Pi-sufficient paddy. This highlights the utility of improving rice low-Pi tolerance via a tissue-specific CRISPR/Cas9 knockout, provides insights into the role of vascular tissues in PSR, and offers a promising spatial-targeting strategy for crop improvement.
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