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May 31, 2026Agronomy0 citationsOpen Access

Optimized Nitrogen Application Enhances Grain-Filling and Yield Formation of Spring Maize Through Improved Source-Sink Coordination in a Black Soil Region

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WCWenzhuo CaoZYZhenwen YuYSYu Shi

Key Points

  • The aim is to clarify how nitrogen application rates affect maize yield through source-sink coordination.
  • Field experiments conducted in black soil region of Northeast China from 2022 to 2024
  • Five nitrogen application rates tested: 0, 90, 135, 180, and 225 kg ha−1
  • Physiological assessments included chlorophyll content and enzyme activity measurements.
  • N180 treatment yielded 7.23–51.40% higher than other treatments over three years
  • Significant increases in chlorophyll content and enzyme activities for N180 and N225 treatments
  • N180 promoted 5.21–51.41% more dry matter allocation to grains compared to other rates.

Abstract

Nitrogen application rate (N rate) is a key factor affecting maize yield, but the physiological mechanisms by which it improves yield through the coordination of the source-sink relationship remain unclear. In this study, field experiments were conducted in the black soil region of Northeast China for three consecutive years (2022–2024). Five N rates were tested: 0 kg ha−1 (N0), 90 kg ha−1 (N90), 135 kg ha−1 (N135), 180 kg ha−1 (N180), and 225 kg ha−1 (N225). The results showed that the N180 treatment achieved the highest yield across the three growing seasons, with yields 7.23–51.40% higher than those of the other treatments. This was mainly attributable to the synergistic improvement in grain number per ear and 100-grain weight. After anthesis, the N180 and N225 treatments significantly increased chlorophyll content (SPAD), PSII photochemical efficiency-related parameters (Fv/Fm, ΦPSII, and qP), and the activities of carbon assimilation-related enzymes (RuBPCase and PEPCase) in the ear leaf, indicating improved photosynthesis-related physiological status. Meanwhile, N180 significantly promoted the translocation of stored dry matter from pre-anthesis vegetative organs to the grains, resulting in a 5.21–51.41% increase in the proportion of dry matter allocated to the grains at maturity compared with the other treatments. Logistic equation fitting showed that an increased grain-filling rate and an extended grain-filling period were the main reasons for the higher grain weight under N180. Although N225 maintained high post-anthesis dry matter accumulation, more assimilates were retained in vegetative organs, which limited further improvement in grain-filling and grain weight. These findings provide a theoretical basis and practical guidance for the rational application of nitrogen fertilizer in this region.

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Cite This Study

Cao et al. (2026) studied this question.

synapsesocial.com/papers/6a1bd2675783ba022b6fddaehttps://doi.org/10.3390/agronomy16111073
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