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Updated: Sep 11, 2026

Microplot Design and Plant and Soil Sample Preparation for 15Nitrogen Analysis
Published on: May 10, 2020
Controlled-release fertilization reshapes maize yield through plant-soil synchrony: shifting from nitrogen supply
Hongyu Ma1,2, Xianyue Li1,3, Mauro De Feudis2
1State Key Laboratory of Water Engineering Ecology and Environment in Arid Area, Inner Mongolia Agricultural University, Huhhot, China.
Background And Aims:
Nitrogen (N) management in maize systems is constrained by low fertilizer use efficiency and substantial environmental losses, particularly in arid irrigated regions where soil N heterogeneity disrupts plant uptake and allocation. Controlled-release fertilizers (CRFs) offer a promising approach to coordinate soil N supply with crop N demand and regulate internal N cycling during yield.
Methods:
To elucidate the mechanisms by which CRF enhances N utilization and coordinates N allocation, field experiments were conducted in western Inner Mongolia, China from 2022 to 2024. This study to evaluate their impact on N accumulation (NA), tissue-specific N partitioning and N remobilization, leaf N remobilization efficiency (NREleaf), stem N remobilization efficiency (NREstem), supply-demand synchrony index (SDI), supply-plant N requirement synchronization (SPNR), soil nitrate dynamics, and maize yield throughout the growing season.
Results:
The results showed CRF markedly enhanced N remobilization, with NREleaf and NREstem increasing by 12.3% and 24.8%. Notably, CRFs also improved overall N supply-demand synchronization: average SDI values for CF3 and CF2 were 0.77 and 0.86, compared with 0.61 for regular fertilizer (RF), representing a 26-41% increase. Building on this, structural equation modeling revealed that the mechanism regulating yield shifted from N supply intensity under RF (R2= 0.74) to synchronization-driven control under CRF (R2 = 0.79), in which SPNR coordinated N allocation and remobilization (>0.8 contribution) to determine grain NA and final yield.
Conclusion:
These findings demonstrate that optimizing N supply-demand synchronization, rather than increasing N inputs, fundamentally reshapes maize yield formation by coordinating internal N cycling. CRFs, particularly at moderate N rates, offer a pathway for improving N use efficiency while reducing environmental risk, providing actionable insights for sustainable maize production in N-limited, arid irrigated systems.
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