Crops ›› 2025, Vol. 41 ›› Issue (5): 42-46.doi: 10.16035/j.issn.1001-7283.2025.05.006

Previous Articles     Next Articles

Effect of Melatonin Soaking on Foxtail Millet Germination under Saline-Alkali Stress

Xu Mingli1(), Wu Baichen1, Liu Chang1, Gao Xinhan1, Yin Jiaqi1, He Xue1, Liu Ying1, Yin Zequn1, Miao Xingfen1,2()   

  1. 1 Agricultural College, Heilongjiang Bayi Agricultural University / Heilongjiang Province Key Laboratory of Modern Agricultural Cultivation Technology and Crop Quality Improvement, Daqing 163319, Heilongjiang, China
    2 Key Laboratory of Green and Low-Carbon Agriculture in Northeast Plain, Ministry of Agriculture and Rural Affairs, Daqing 163319, Heilongjiang, China
  • Received:2024-04-24 Revised:2024-05-24 Online:2025-10-15 Published:2025-10-21

Abstract:

This experiment investigated the effects of melatonin solution soaking on the seed germination of two foxtail millet varieties, the saline-sensitive variety Datong 29 and the saline-tolerant variety Longgu 25, under an 80 mmol/L saline-alkali stress. The saline-alkali solution was a mixture of Na?SO4, NaCl, NaHCO3, and Na?CO3 at a ratio of 4:1:4:1. Seeds were soaked in melatonin solutions at concentrations of 50, 100, 150, and 200 μmol/L. The results showed that compared with single stress treatment, the root and shoot lengths of both foxtail millet varieties initially increased and then decreased with rising melatonin concentrations. For the saline-alkali sensitive variety, Datong 29, the germination rate, germination index, and antioxidant enzyme activities all showed a gradual increasing trend. A concentration of 200 μmol/L melatonin was the most effective in alleviating saline stress for Datong 29. For the saline-tolerant variety, Longgu 25, the germination rate, germination potential, germination index, vigor index, and antioxidant enzyme activities showed a trend of first increasing and then decreasing. A concentration of 150 μmol/L melatonin was most effective in improving its stress tolerance.

Key words: Foxtail millet, Melatonin, Saline-alkali stress, Germination, Antioxidant enzyme

Table 1

Effects of different concentrations of melatonin on germination characteristics of foxtail millet under saline-alkali stress"

品种Cultivar 处理Treatment 发芽势Germination potential (%) 发芽率Germination rate (%) 发芽指数GI 活力指数VI
大同29
Datong 29
CK 36.00±1.63a 72.00±1.63a 34.85±0.76a 261.71±5.68a
D 20.00±1.63b 36.67±2.49d 15.77±0.42d 14.98±0.40d
D+50 20.67±0.94b 38.00±1.63d 18.14±0.92c 23.40±1.19c
D+100 21.33±0.94b 43.33±2.49c 18.74±1.10c 24.36±1.43bc
D+150 23.33±2.49b 50.00±1.63b 20.12±0.98bc 30.58±1.49b
D+200 21.33±1.89b 53.33±2.49b 21.56±1.16b 29.97±1.61b
龙谷25
Longgu 25
CK 54.67±0.94c 85.33±1.89a 42.98±0.76b 326.25±5.75a
D 33.33±1.89e 58.00±2.83d 25.49±1.02d 32.37±1.29f
D+50 48.67±0.94d 68.67±1.89c 35.85±0.82c 46.60±1.07e
D+100 58.00±1.63b 76.67±0.94b 44.16±1.34b 58.73±1.79d
D+150 65.33±0.94a 77.33±0.94b 48.83±1.32a 119.16±3.23b
D+200 60.67±0.94b 76.00±1.63b 47.60±0.85a 69.50±1.23c

Table 2

Effects of different concentrations of melatonin on root length and shoot length of foxtail millet under saline-alkali stress cm"

品种
Cultivar
CK D D+50 D+100 D+150 D+200
根长
Root
length
芽长
Bud
length
根长
Root
length
芽长
Bud
length
根长
Root
length
芽长
Bud
length
根长
Root
length
芽长
Bud
length
根长
Root
length
芽长
Bud
length
根长
Root
length
芽长
Bud
length
大同29 Datong 29 7.51a 2.29a 0.95c 1.21d 1.29b 1.50c 1.30b 1.65bc 1.52b 1.72b 1.39b 1.55c
龙谷25 Longgu 25 7.59a 3.13a 1.27c 1.40c 1.30c 1.51c 1.33c 1.63c 2.44b 2.12b 1.46c 1.62c

Fig.1

Effects of different concentrations of melatonin on antioxidant enzyme activity in foxtail millet under saline-alkali stress Different lowercase letters indicate significant difference among treatments (P < 0.05), the same below."

Table 3

Correlation analysis of the effects of different concentrations of melatonin soaking on the growth and antioxidant enzyme activity of foxtail millet"

指标
Index
发芽势
Germination potential
发芽率
Germination rate
发芽指数
GI
活力指数
VI
根长
Root length
芽长
Bud length
SOD POD CAT
发芽势Germination potential 1.000
发芽率Germination rate 0.939** 1.000
发芽指数GI 0.994** 0.961** 1.000
活力指数VI 0.450 0.597* 0.507 1.000
根长Root length 0.252 0.434 0.320 0.966** 1.000
芽长Bud length 0.441 0.570 0.495 0.933** 0.859** 1.000
SOD 0.197 0.065 0.166 -0.643* -0.766** -0.437 1.000
POD 0.596* 0.467 0.574 -0.313 -0.505 -0.161 0.879** 1.000
CAT 0.501 0.361 0.483 -0.396 -0.549 -0.235 0.905** 0.954** 1.000
[1] 何红中. 中国古代粟作研究. 南京:南京农业大学, 2010.
[2] 芦宁. 先秦两汉黄河流域粟与小麦地位变化研究. 开封:河南大学, 2015.
[3] 陈二影, 杨延兵, 程炳文, 等. 不同夏谷品种的产量与氮肥利用效率. 中国土壤与肥料, 2015(2):101-105.
[4] Diao X M. Production and genetic improvement of minor cereals in China. The Crop Journal, 2017, 5(2):103-114.
[5] Basak N, Rai A K, Sundha P, et al. Agricultural Soil Sustainability and Carbon Management. Elsevier: Academic Press, 2023.
[6] 王世睿, 黄迎新. 松嫩平原盐碱地改良治理研究进展. 土壤与作物, 2023, 12(2):206-217.
[7] 王世平, 陈月, 潘大伟, 等. 盐碱地治理研究综:现状、问题与对策. 化工矿物与加工, 2023, 52(11):59-68.
[8] Yan F Y, Wei H M, Ding Y F, et al. Melatonin enhances Na+/K+ homeostasis in rice seedlings under salt stress through increasing the root H+-pump activity and Na+/K+ transporters sensitivity to ROS/RNS. Environmental and Experimental Botany, 2021, 182:104328.
[9] Zhang N, Sun Q Q, Zhang H J, et al. Roles of melatonin in abiotic stress resistance in plants. Journal of Experimental Botany, 2015, 66(3):647-656.
doi: 10.1093/jxb/eru336 pmid: 25124318
[10] Shi H T, Zhang B, et al. Comparative proteomic and metabolomic analyses reveal mechanisms of improved cold stress tolerance in bermudagrass by exogenous calcium. Journal of Integrative Plant Biology, 2014, 56(11):1064-1079.
[11] Turk H, Erdal S, Genisel M, et al. The regulatory effect of melatonin on physiological, biochemical and molecular parameters in cold-stressed wheat seedlings. Plant Growth Regulation, 2014, 74(2):139-152.
[12] 刘娜. 褪黑素浸种对盐碱胁迫下侧柏种子萌发和幼苗生长的影响. 山西林业科技, 2023, 52(1):23-25,52.
[13] 亚梦菲, 刘人铜, 王建林. 不同复合盐碱胁迫下外源褪黑素浸种对黑青稞种子萌发特性及幼苗生长的影响. 江苏农业科学, 2023, 51(21):86-92.
[14] 李平平, 张永清, 张萌, 等. 褪黑素浸种对混合盐碱胁迫下藜麦生长及生理的影响. 江苏农业科学, 2023, 51(4):77-84.
[15] 吴秀宁, 赵麟, 徐芳琴, 等. 盐胁迫下黑小麦的萌发特性及耐盐评价指标与耐盐种质的筛选. 贵州农业科学, 2023, 51(3):19-26.
[16] 代婷, 梅新娣. 不同盐碱胁迫对大叶补血草种子萌发及幼苗生长的影响. 北方园艺, 2023(11):106-112.
[17] 姚婷, 刘扬, 梁允刚, 等. 盐碱胁迫对小麦幼苗生长和根际细菌群落结构的影响. 微生物学通报, 2023, 50(10):4472-4484.
[18] 王明瑶, 曹亮, 于奇, 等. 褪黑素浸种对盐碱胁迫下大豆种子萌发的影响. 作物杂志, 2019(6):195-202.
[19] 熊毅, 熊艳丽, 杨晓鹏, 等. 外源褪黑素对盐胁迫下老化燕麦种子萌发及幼苗的影响. 中国草地学报, 2020, 42(1):7-14.
[20] 毛培胜, 张晔, 黄琪, 等. 褪黑素引发对敖汉苜蓿种子碱性盐胁迫的缓解作用. 中国草地学报, 2020, 42(3):30-36.
[21] 黎力乙, 高原千惠, 邢鏻木, 等. 褪黑素浸种对盐分胁迫下紫花苜蓿种子萌发的影响. 分子植物育种,(2022-05-24)[2024- 05-24]. https://link.cnki.net/urlid/46.1068.S.20220524.1440.007.
[1] Zhou Tingfang, Li Ran, Liu Qianqian, Zhang Ze, Wang Zhenhua, Ma Baoxin, Lu Ming, Zhang Lin, Han Yehui, Yang Bo, Li Mingshun, Zhang Degui, Weng Jianfeng, Yong Hongjun, Xu Jingyu, Han Jienan, Li Xinhai. Analysis of Salt Tolerance at Germination Stage of 118 Maize Hybrids in Northeast China [J]. Crops, 2025, 41(5): 1-10.
[2] Li Ying, Zhao Yongwei, Chen Ying, Ma Weiming, Li Wenzhen, Zhang Haijie. Effects of Chemical Mutagens on Seed Germination and Main Agronomic Traits of M1 Generation of Flax ʻDingya 23ʼ [J]. Crops, 2025, 41(5): 155-164.
[3] Du Hanmei, Tan Lu, Li Shengchun, Wang Qinghai, Xu Zhou, Wu Dandan, Wang Anhu. Cadmium Tolerance of Tartary Buckwheat during Germination Stage and Its Effects on Physiological Characteristics of Seedlings [J]. Crops, 2025, 41(5): 209-220.
[4] Yan Jingrong, Pang Chunhua, Zhang Yongqing, Wu Yueyue, Hou Yuchen, Wang Jiaqi, Qiao Man. Effects of Desulfurized Gypsum and Humic Acid Interaction on Soil and Quinoa Growth in Saline-Alkali Land [J]. Crops, 2025, 41(5): 47-53.
[5] Zhang Jindong, Wang Cheng, Lu Huan, Zeng Lingling, Zhang Gongliang, Sun Haoyue, Liu Yue, Yang Helin, Hou Xiaomin. Response of Mung Bean Genotypes to Exogenous Brassinosteroids under Saline-Alkali Stress [J]. Crops, 2025, 41(5): 54-60.
[6] Chen Ping, Luo Yuanyuan, Wang Juan, Sun Quan, Ma Lingfang, Ma Wenli, Xie Jingbo. Response and Tolerance Evaluation of Oat to Mixed Saline-Alkali Stress at Germination Stage [J]. Crops, 2025, 41(5): 61-66.
[7] Wang Yanwei, Wu Junxi, Wang Yan, Mu Tao, Langzhuoma , Miao Yanjun. Effects of Saline-Alkali Stress on Seed Germination of Urtica dioica L. [J]. Crops, 2025, 41(5): 67-73.
[8] Zhao Zhou, Zhang Li, Gao Xinlei, Qiu Hongyu. Effects of Compound Saline-Alkali Stress on Growth and Metabolism of Oat [J]. Crops, 2025, 41(5): 74-85.
[9] Liu Xuanxuan, Guo Ruishi, Dong Mengmeng, Zhu Keying, Zhu Xiaopin, Wang Li, Wang Ning. Preliminary Study on the Waterlogging Tolerance Mechanisms in Two Cotton Varieties at Seedling Stage during Waterlogging Stress and Recovery Period [J]. Crops, 2025, 41(4): 126-134.
[10] Dong Yang, Yan Feng, Zhao Fuyang, Hou Xiaomin, Li Qingquan, Li Qingchao, Liu Yue, Lan Ying, Yang Huiying, Wang Bingxue, Xu Yan. Effects of Different Herbicide Application Schemes on Foxtail Millet Growth and Soil Microorganisms [J]. Crops, 2025, 41(4): 238-244.
[11] Du Bing, Yang Furong, Wang Cheng, Guo Haojie, Zhang Fuhou, Meng Chaomin. Analysis of Grain Calcium Content, Quality and Agronomic Characteristics of 66 Foxtail Millet Varieties [J]. Crops, 2025, 41(4): 87-94.
[12] Hou Xiaomin, Shen Huibo, Dong Shoukun, Yan Feng, Dong Yang, Zhao Fuyang, Li Qingquan, Zuo Yuetao. Physiological Effects of Mepiquat Chloride on Alleviating Drought Stress in Soybean Seedling Leaves [J]. Crops, 2025, 41(3): 133-140.
[13] Hao Hongbo, Yu Guohong, Liu Shanhe, Zhang Ruixue, Liu Jianjun, Li Mingzhe. The Study on the Breeding and Prematurity of a Ultra-Early Maturing and Dwarf Foxtail Millet Variety Henggu 12 [J]. Crops, 2025, 41(3): 38-44.
[14] Zhao Yajie, Wen Rui, Jia Yiming, Jin Xiaolei, Zhang Yonghu, Zhang Lijun, Zhang Biao, Zhang Hui, Yu Lixia. Analysis of Genetic Diversity of Phenotypic Traits of Foxtail Millet Germplasm Resources [J]. Crops, 2025, 41(3): 61-69.
[15] Di Na, Zheng Xiqing, Wang Jing, Han Haijun, Li Na. Study on the Difference of Physiological Response of Sunflower to Broomrape Parasitism [J]. Crops, 2025, 41(2): 123-127.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!