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Updated: Jun 27, 2026

Imaging and Analysis for Quantifying Maize (Zea mays) Abiotic Stress Phenotypes
Published on: March 28, 2025
Synergistic Enhancements in Maize Yield and Water Productivity: Dense Planting with Regulated Deficit Irrigation
Feng Wang1, Haofeng Meng1, Jun Xue2
1State Key Laboratory of Aridland Crop Science, Seed Industry Research Institute, College of Agronomy, Gansu Agricultural University, Lanzhou 730070, China.
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Enhancing both grain yield and water productivity (WP) under water scarcity is a critical challenge for sustainable maize production. Conventional farmer practices-characterized by low planting density (D1: 9.0 × 104 plants·ha-1) and excessive irrigation (I5)-often limit the potential for both. To advance the high-density production system enabled by precision stage-specific regulation (HD-PSR), we conducted a multi-region field experiment across arid to sub-humid climates in Xinjiang, China. Treatments included region-specific full irrigation (I5) and four deficit levels (I1-I4, each reduced by 90 mm relative to I5). Compared with the conventional model (D1 + I5), the HD-PSR-based optimized model (D2, 12.0 × 104 plants·ha-1 plus regulated deficit irrigation, Iopt) synergistically increased grain yield by 18.8-25.0% and WP by 8.7-20.0% across sites, while saving 11.1-50.0% of irrigation water. This synergy was driven by improved canopy coverage and sustained dry matter accumulation under precision-regulated irrigation that maintained soil water storage at ~70% of field capacity, thereby reducing non-productive water losses (soil evaporation in arid/semi-arid areas and excessive transpiration in the semi-humid area). Our study provides a quantitative irrigation module for the HD-PSR and identifies a translatable soil water threshold (~70% FC) for sustainable intensification of maize in water-limited regions.
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