Scientia Agricultura Sinica ›› 2026, Vol. 59 ›› Issue (7): 1439-1455.doi: 10.3864/j.issn.0578-1752.2026.07.005

• TILLAGE & CULTIVATION·PHYSIOLOGY & BIOCHEMISTRY·AGRICULTURE INFORMATION TECHNOLOGY • Previous Articles     Next Articles

Effects of Ethephon-Glycine Betaine-Salicylic Acid Mixture on Root System Architecture, Physiological Function and Yield of Maize Under Heat Stress

WANG YaFei1(), YAN Peng1, XUE JinTao2, DONG XueRui1, MENG FanQi1, GUO LiNa1, LUO Yi1, ZHANG Juan1, DONG ZhiQiang1,*(), LU Lin1,*()   

  1. 1 Institute of Crop Sciences, Chinese Academy of Agricultural Sciences/Key Laboratory of Crop Eco-Physiology and Cultivation, Ministry of Agriculture and Rural Affairs, Beijing 100081
    2 Inspection and Testing Center of Gao Tang County, Gaotang 252800, Shandong
  • Received:2025-09-02 Accepted:2026-03-16 Online:2026-04-08 Published:2026-04-08
  • Contact: DONG ZhiQiang, LU Lin

Abstract:

【Objective】High temperature and heat damage frequently occur in the summer maize production areas of the Huang-Huai-Hai area, which severely inhibits the growth and development and impairs functions such as water and nutrient uptake and storage of maize roots. Elucidating the effects of the ethephon-glycine betaine-salicylic acid (EGS) mixture on root system architecture and yield formation under heat stress could provide the technical support and theoretical basis for establishing chemical regulation strategies for heat resistance and yield increase in summer maize cultivation in the Huang-Huai-Hai area. 【Method】Field experiments were conducted at the Xinxiang Experimental Station of the Chinese Academy of Agricultural Sciences in 2022 and 2023. Using Yudan 9953 (YD9953) and Zhengdan 958 (ZD958) as test materials, chemical regulation treatment and heat stress treatment were established. For the chemical regulation treatment, the EGS mixture was sprayed on the leaves at the 6th-leaf stage (V6), while an equal amount of water was applied to the control group. Heat stress treatments were implemented for 4 days at the 9th-leaf stage (V9) and tasseling stage (VT), respectively, with field heating treatment (H) and normal temperature control (CK). The study aimed to investigate the effects of EGS treatment on root system architecture, physiological functions, and yield of maize under heat stress during different growth stages. 【Result】Under heat stress treatment in V9 and VT stages, compared with normal temperature control, in terms of root system architecture, the root dry weight, root-shoot ratio, the number of roots, root length, root surface area and root volume of YD9953 and ZD958 were significantly decreased; in terms of root physiological functions, root activity and activities of root antioxidant enzymes (SOD, POD, and CAT) were decreased significantly, while malondialdehyde (MDA) content increased significantly. Consequently, yield components and final output were severely compromised, with significant reductions in kernel number per ear, 100-kernel weight, and grain yield. Compared with heat stress treatment, EGS-H treatment improved root system architecture, alleviated the inhibition effect of heat stress on the number of roots, especially the number of aerial roots, significantly increased the root dry weight, root length, root surface area and root volume, and root volume was significantly positively correlated with yield. EGS-H treatment enhanced root physiological functions, significantly increased root activity and root antioxidant enzymes (SOD, POD, and CAT), while membrane peroxidation degree was significantly decreased. EGS-H treatment significantly increased the kernel number per ear and yield. After heat stress was applied at the V9 and VT stages, compared with heat stress treatment, EGS-H treatment increased the yield of YD9953 by an average of 19.42% and 19.56% in 2022, respectively, and by 14.40% and 17.95% in 2023, respectively. For ZD958, the yield increased by 9.81% and 13.02% in 2022, respectively, and by 7.68% and 7.78% in 2023, respectively. 【Conclusion】The EGS mixture could regulate the root system architecture of summer maize under heat stress, promote root growth and development, and increase maize yield under heat stress.

Key words: summer maize, heat stress, root system architecture, antioxidant properties, chemical regulation

Fig. 1

Daily cumulative precipitation and daily mean temperature during the summer maize growth period"

Fig. 2

Field warming shed and schematic diagram of single plot layout CK: Normal temperature treatment; EGS-CK: Normal temperature treatment after EGS treatment; H: Heat stress treatment; EGS-H: Heat stress treatment after EGS treatment. The same as below"

Fig. 3

Diurnal temperature variation of summer maize during normal temperature and heat stress treatments V9: 9th leaf stage; VT: Tasseling stage"

Fig. 4

Diagram of maize root layer distribution Number of roots in the maize first to fifth layers"

Table 1

Effects of EGS treatment on seedling dry weight, root dry weight and root-shoot ratio of summer maize under heat stress"

年份
Year
品种
Variety
生育时期
Growth stage
处理
Treatment
地上部干重
Seedling dry weight (g/plant)
根干重
Root dry weight (g/plant)
根冠比
Root-shoot ratio (×10-2)
2022 YD9953 V9 CK 24.13b 3.05b 12.67a
EGS-CK 25.37a 3.39a 13.35a
H 21.82c 2.44c 11.22b
EGS-H 24.34b 3.10b 12.74a
VT CK 98.21a 9.32b 9.49b
EGS-CK 100.37a 10.33a 10.30a
H 85.87c 7.08c 8.26c
EGS-H 94.52b 9.16b 9.69b
ZD958 V9 CK 25.30b 3.62b 14.31a
EGS-CK 26.76a 3.93a 14.70a
H 23.80c 3.15c 13.26b
EGS-H 24.89b 3.50b 14.06a
VT CK 108.82b 9.80b 9.02a
EGS-CK 114.79a 10.62a 9.27a
H 100.33c 8.24c 8.22b
EGS-H 106.97b 9.46b 8.85a
2023 YD9953 V9 CK 45.19a 5.81b 12.92b
EGS-CK 43.61a 6.51a 14.94a
H 37.95c 4.78d 12.61b
EGS-H 40.81b 5.32c 13.08b
VT CK 104.15a 11.51b 11.06b
EGS-CK 100.37a 12.95a 12.92a
H 85.57c 8.87d 10.38c
EGS-H 93.87b 10.48c 11.19b
ZD958 V9 CK 46.32a 6.64b 14.38b
EGS-CK 45.41a 7.42a 16.37a
H 39.90c 5.54d 13.94b
EGS-H 42.85b 5.93c 13.88b
VT CK 123.90a 12.73b 10.29b
EGS-CK 121.70a 13.95a 11.48a
H 105.95c 10.20d 9.65c
EGS-H 114.00b 10.95c 9.62c
ANOVA
Year *** *** ***
Growth stage *** *** ***
Variety *** *** **
EGS *** *** ***

Fig. 5

Diagram of summer maize root morphology at V9 and VT stages"

Table 2

Effects of EGS treatment on the number of roots per root layer of summer maize under heat stress"

年份
Year
品种
Variety
生育时期
Growth stage
处理
Treatment
第1—2层根条数
Number of roots in the first to second layers
第3层根条数
Number of roots
of the third layer
第4层根条数
Number of roots
of the fourth layer
第5层根条数
Number of roots
of the fifth layer
气生根条数
Number of aerial roots
2022 YD9953 V9 CK 8.56b 5.00ab 5.22ab 7.33b 13.22b
EGS-CK 9.67a 5.56a 5.44a 8.89a 15.44a
H 7.67c 4.33b 4.89b 6.78b 11.44c
EGS-H 8.78b 5.00ab 5.22ab 7.56b 13.44b
VT CK 10.78b 5.67ab 6.56b 9.56a 32.67b
EGS-CK 11.22a 5.89a 8.11a 10.00a 38.22a
H 9.78c 5.00b 5.67b 7.11b 29.44c
EGS-H 10.67b 5.44ab 8.00a 9.11a 32.56b
ZD958 V9 CK 7.67b 4.78a 5.00a 6.78a 6.88b
EGS-CK 8.22a 5.00a 5.11a 6.67a 8.44a
H 7.11c 4.44a 4.78a 6.78a 5.50c
EGS-H 7.67b 4.89a 5.11a 6.56a 7.56b
VT CK 9.11b 3.78a 5.44a 8.22a 22.33b
EGS-CK 10.00a 3.78a 5.67a 8.33a 25.78a
H 8.44c 3.33a 5.22a 8.44a 19.00c
EGS-H 9.00b 3.33a 5.56a 8.11a 22.78b
2023 YD9953 V9 CK 9.56b 5.33a 5.67a 7.67c 23.78b
EGS-CK 10.67a 5.89a 6.00a 9.00a 26.44a
H 8.67c 4.78a 5.11a 7.22c 20.56c
EGS-H 9.56b 5.22a 5.89a 8.44b 23.11b
VT CK 10.56b 6.78a 6.22b 10.00a 37.00b
EGS-CK 11.22a 6.89a 8.11a 10.00a 42.22a
H 9.78c 6.11a 5.78b 7.56a 31.22d
EGS-H 10.33b 6.33a 8.00a 9.67a 35.22c
ZD958 V9 CK 9.44a 4.00a 5.44a 6.56a 9.11b
EGS-CK 9.67a 4.00a 5.11a 6.67a 12.44a
H 9.00b 3.67a 5.56a 6.56a 7.33c
EGS-H 9.67a 4.00a 5.22a 6.67a 9.44b
VT CK 10.33b 3.89a 5.56a 6.78a 28.44b
EGS-CK 11.00a 3.78a 5.67a 6.89a 31.78a
H 9.56c 3.67a 5.22a 6.22a 25.33c
EGS-H 10.22b 3.78a 5.33a 6.56a 29.11b
ANOVA
Year *** ns *** *** ***
Growth stage *** *** *** *** ***
Variety *** *** *** *** ***
EGS *** *** *** *** ***

Table 3

Effects of EGS treatment on root morphology and configuration in summer maize under heat stress"

年份
Year
品种
Variety
生育时期
Growth stage
处理
Treatment
根长
Root length
(cm/plant)
根表面积
Root surface area (cm2/plant)
根体积
Root volume
(cm3/plant)
根径 Root diameter (mm)
0<D≤0.5 0.5<D≤1.0 1.0<D≤2.0 D>2.0
根长 Root length (cm)
2022 YD9953 V9 CK 2881.80b 535.59b 12.72c 1796.25b 251.83c 559.51b 274.22b
EGS-CK 3286.37a 617.50a 16.16a 1978.71a 332.58a 651.80a 323.28a
H 2407.34c 444.17c 10.28d 1591.93c 186.00d 475.91c 153.50c
EGS-H 2944.33b 540.19b 13.36b 1819.57b 274.52b 568.01b 282.23b
VT CK 4580.03c 1112.38b 21.10b 2831.73b 547.18c 774.62c 426.49b
EGS-CK 5152.98a 1261.47a 25.85a 3155.76a 631.32a 891.61a 474.29a
H 3691.29d 873.90c 15.67c 2411.29c 392.54d 648.25d 240.39c
EGS-H 4786.91b 1112.70b 21.54b 2947.56b 573.28b 837.68b 428.39b
ZD958 V9 CK 2380.25b 556.90b 13.13b 1543.15b 261.31b 291.83b 282.45b
EGS-CK 2667.19a 624.86a 16.20a 1747.33a 294.35a 312.89a 312.61a
H 2132.99c 489.02c 11.47c 1475.74c 201.73c 245.80d 212.67d
EGS-H 2368.48b 556.50b 13.06b 1573.76b 251.83b 276.74c 266.14c
VT CK 4653.00b 1184.81b 23.09b 2943.22b 587.18b 563.08b 559.52b
EGS-CK 5233.19a 1326.08a 27.94a 3332.34a 614.41a 660.17a 626.27a
H 3918.67c 1000.52c 19.10c 2562.61c 455.25d 465.58c 435.24c
EGS-H 4637.00b 1170.96b 22.44b 2991.69b 541.61c 561.01b 542.70b
2023 YD9953 V9 CK 2314.75b 722.72b 20.48b 1217.57b 232.43b 466.88b 397.87b
EGS-CK 2585.70a 823.33a 25.65a 1355.28a 261.87a 513.23a 455.32a
H 1952.64c 588.66c 18.20c 1058.17c 186.89c 403.91c 303.68c
EGS-H 2359.15b 707.39b 21.03b 1241.00b 236.96b 475.78b 405.41b
VT CK 6387.59c 1675.97b 30.67b 4019.09b 740.71c 1059.08c 568.72c
EGS-CK 7061.35a 1882.80a 36.93a 4322.96a 901.88a 1128.62a 707.90a
H 5137.93d 1287.31c 25.44c 3335.83c 577.03d 874.81d 350.26d
EGS-H 6535.01b 1640.87b 30.83b 4019.75b 807.67b 1093.04b 614.56b
ZD958 V9 CK 2403.76b 733.88b 22.24b 1400.32b 390.92b 255.03b 357.48b
EGS-CK 2676.71a 822.18a 27.00a 1574.18a 426.60a 303.78a 372.16a
H 2086.50c 622.35c 19.84c 1235.02c 344.98c 207.12c 299.38c
EGS-H 2434.83b 742.76b 22.63b 1411.92b 400.50b 263.49b 358.92b
VT CK 7578.98b 1734.40b 32.89b 5036.41b 866.66b 911.06c 764.86b
EGS-CK 8388.44a 1950.12a 39.35a 5462.85a 990.98a 1064.80a 869.82a
H 6465.31c 1419.00c 27.77c 4362.68c 726.92c 734.64d 641.08c
EGS-H 7752.56b 1766.91b 33.00b 5123.29b 896.90b 951.70b 780.68b
ANOVA Year *** *** *** *** *** *** ***
Growth stage *** *** *** *** *** *** ***
Variety *** *** *** *** *** *** ***
EGS *** *** *** *** *** *** ***

Fig. 6

Effects of EGS treatment on root activity of summer maize under heat stress at V9 and VT"

Fig. 7

Effects of EGS treatment on root SOD, POD and CAT activity of summer maize under heat stress at V9 and VT"

Fig. 8

Effects of EGS treatment on root MDA content of summer maize under heat stress at V9 and VT"

Table 4

Effects of EGS treatment on summer maize yield and its components under heat stress"

年份
Year
品种
Variety
生育时期
Growth stage
处理
Treatment
穗粒数
Kernel number per ear
百粒重
100-kernel weight (g)
产量
Yield (kg·hm-2)
2022 YD9953 V9 CK 396.19a 30.31a 6326.97a
EGS-CK 409.81a 30.93a 6732.17a
H 353.76b 29.01b 5387.48b
EGS-H 394.71a 30.46a 6433.60a
VT CK 409.29a 29.22a 6740.41a
EGS-CK 409.87a 30.35a 7012.71a
H 362.35b 27.09b 5561.3b
EGS-H 399.32a 29.57a 6648.82a
ZD958 V9 CK 382.44a 45.81a 9527.93a
EGS-CK 393.86a 46.15a 9953.71a
H 354.79b 43.69b 8436.36b
EGS-H 385.35a 44.08b 9263.82a
VT CK 376.27a 46.25a 9558.58a
EGS-CK 385.83a 46.68a 9974.25a
H 347.65b 42.77b 8211.40b
EGS-H 375.22a 43.69b 9280.32a
2023 YD9953 V9 CK 563.52a 31.96a 10419.95a
EGS-CK 536.76b 32.99a 10168.52a
H 470.40d 30.55b 8452.64c
EGS-H 496.92c 33.29a 9670.17b
VT CK 545.51a 32.39a 10082.99a
EGS-CK 525.05a 33.18a 10074.03a
H 450.33b 29.80b 7855.43c
EGS-H 520.79a 30.48b 9265.43b
ZD958 V9 CK 533.97a 43.86a 13670.45a
EGS-CK 525.14ab 44.89a 13608.81a
H 492.54c 41.56b 11914.85c
EGS-H 521.46b 42.12b 12829.62b
VT CK 513.59a 43.74a 13298.30a
EGS-CK 513.73a 44.01a 13246.31a
H 466.52c 39.90b 10789.49c
EGS-H 486.12b 41.19b 11629.36b
ANOVA
年份 Year *** ns ***
生育时期 Growth stage ** ** **
品种 Variety *** *** ***
EGS *** *** ***

Fig. 9

Heatmap of correlation analysis between root system architecture and yield of summer maize KNP: Kernel number per ear; 100-GW: 100-kernel weight; SDW: Seedling dry weight; RDW: Root dry weight; RL: Root length; RSA: Root surface area; RV: Root volume. * mean significant differences at 0.05 levels"

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