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April 25, 2026Nitrogen0 citationsOpen Access

Determination of Optimal Nitrogen Application Rates to Enhance Heat Stress Tolerance in Autumn Radish (Raphanus sativus L.) Using OJIP Transient Analysis

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TETae-seon EomTKTae Wan KimSYSung Yung Yoo

Key Points

  • This research aims to determine the ideal nitrogen application rates that enhance heat stress tolerance in radish by assessing photosynthetic efficiency.
  • Conducted an open-field experiment with five nitrogen levels (0 N, 0.5 N, 1 N, 2 N, 4 N) under high-temperature stress conditions.
  • Analyzed OJIP transients to evaluate photosynthetic capacity and electron transport efficiency.
  • Measured energy absorption, trapping, and heat dissipation across treatment groups.
  • At 0 N, 0.5 N, and 4 N, significant reductions in photosynthetic capacity were observed due to heat stress, with increased K and J-steps indicating transport bottlenecks.
  • The 2 N treatment exhibited superior maximum fluorescence (Fm) and energy flux, showing enhanced resilience to heat stress without significant yield increase over 0.5 N or 1 N.
  • No significant yield improvement was noted despite increased photosynthetic protection in the 2 N group, emphasizing the complexity of fertilization effects.

Abstract

High-temperature stress severely reduces the photosynthetic efficiency of radish (Raphanus sativus L. ), a cool-season crop. This study evaluated five nitrogen (N) levels 0 N, 0. 5 N, 1 N (234 kg urea ha−1, based on RDA), 2 N, and 4 N through an open-field experiment under high-temperature stress conditions. Analysis of OJIP transients revealed that high temperatures severely inhibited photosynthetic capacity in the 0 N, 0. 5 N, and 4 N treatment groups. These groups exhibited a simultaneous increase in K and J-steps, signifying electron transport bottlenecks and structural damage to the oxygen-evolving complex (OEC). Consequently, energy absorption and trapping decreased, while heat dissipation increased. In contrast, the 2 N treatment maintained superior Fm (maximum fluorescence) and energy flux, demonstrating enhanced photosynthetic resilience. However, despite improved photosynthetic stability, the 2 N group did not show a significant increase in yield compared to the 0. 5 N or 1 N treatment groups. These results suggest that photosynthetic protection under heat stress does not necessarily guarantee higher yields, highlighting the need to identify optimal fertilization points for sustainable production. Overall, the findings of this study provide fundamental data for strategic nitrogen management in open-field radish cultivation to mitigate the impacts of increasing climatic instability.

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Cite This Study

Eom et al. (2026) studied this question.

synapsesocial.com/papers/69ec5ac988ba6daa22dac538https://doi.org/10.3390/nitrogen7020047
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