
Chinese Journal of Applied Ecology ›› 2023, Vol. 34 ›› Issue (11): 2947-2957.doi: 10.13287/j.1001-9332.202311.004
Previous Articles Next Articles
WANG Jing1,2, FU Bingzhe1,2,3*, LI Shuxia1,2, WANG Xing1,2, SONG Wenxue1,2, YE Yunong1,2, HU Pengfei1,2, WANG Tongrui1,2
Received:2023-07-12
Revised:2023-09-11
Online:2023-11-15
Published:2024-05-15
WANG Jing, FU Bingzhe, LI Shuxia, WANG Xing, SONG Wenxue, YE Yunong, HU Pengfei, WANG Tongrui. Effects of exogenous melatonin on growth and physiological characteristics of Agropyron mongolicum seedlings under drought stress[J]. Chinese Journal of Applied Ecology, 2023, 34(11): 2947-2957.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.cjae.net/EN/10.13287/j.1001-9332.202311.004
| [1] Che YH, Li LH. Genetic diversity of prolamines in Agropyron mongolicum Keng indigenous to northern China. Genetic Resources and Crop Evolution, 2007, 54: 1145-1151 [2] 高福洁, 崔鸿娇, 韩丙芳, 等. 亏缺灌溉对干旱区两种乡土植物种子生产性能及其水分利用效率的影响. 应用生态学报, 2022, 33(9): 2379-2387 [3] Zhao Y, Gao C, Shi F, et al. Transcriptomic and proteomic analyses of drought responsive genes and proteins in Agropyron mongolicum Keng. Current Plant Biology, 2018, 14: 19-29 [4] Yang X, Lu M, Wang Y, et al. Response mechanism of plants to drought stress. Horticulturae, 2021, 7: 50 [5] Souza RP, Machado EC, Silva JAB, et al. Photosynthetic gas exchange, chlorophyll fluorescence and some associated metabolic changes in cowpea (Vigna ungui-culata) during water stress and recovery. Environmental and Experimental Botany, 2004, 51: 45-56 [6] Fang Y, Xiong L. General mechanisms of drought response and their application in drought resistance improvement in plants. Cellular and Molecular Life Sciences, 2014, 72: 673-689 [7] Santner A, Estelle M. Recent advances and emerging trends in plant hormone signalling. Nature, 2009, 459: 1071-1078 [8] Oladosu Y, Rafii MY, Samuel C, et al. Drought resis-tance in rice from conventional to molecular breeding: A review. International Journal of Molecular Sciences, 2019, 20: 3519 [9] 刘鑫, 付丽娟, 于静, 等. 5种外源物质对干旱胁迫下笔筒树幼苗生长的缓解效应. 西北植物学报, 2022, 42(7): 1169-1179 [10] Lerner AB, Case JD, Takahashi Y, et al. Isolation of melatonin, the pineal gland factor that lightens melanocytes. Journal of the American Chemical Society, 1958, 80: 2587 [11] Liang C, Zheng G, Li W, et al. Melatonin delays leaf senescence and enhances salt stress tolerance in rice. Journal of Pineal Research, 2015, 59: 91-101 [12] 王晶. 外源褪黑素缓解沙芦草干旱胁迫的生理及分子机制研究. 硕士论文. 银川: 宁夏大学, 2022 [13] Cen H, Wang T, Liu H, et al. Melatonin application improves salt tolerance of alfalfa (Medicago sativa L.) by enhancing antioxidant capacity. Plants, 2020, 9: 220 [14] Zheng X, Tan DX, Allan AC, et al. Chloroplastic biosynthesis of melatonin and its involvement in protection of plants from salt stress. Scientific Reports, 2017, 7: 41236 [15] 朱春权, 魏倩倩, 项兴佳, 等. 褪黑素和茉莉酸甲酯基质育秧对水稻耐低温胁迫的调控作用. 作物学报, 2022, 48(8): 2016-2027 [16] Alam MN, Zhang L, Yang L, et al. Transcriptomic profiling of tall fescue in response to heat stress and improved thermotolerance by melatonin and 24-epibrassinolide. BMC Genomics, 2018, 19: 224 [17] Shi H, Chen Y, Tan D, et al. Melatonin induces nitric oxide and the potential mechanisms relate to innate immunity against bacterial pathogen infection in Arabidopsis. Journal of Pineal Research, 2015, 59: 102-108 [18] Gu Q, Chen Z, Yu X, et al. Melatonin confers plant tolerance against cadmium stress via the decrease of cadmium accumulation and reestablishment of micro RNA-mediated redox homeostasis. Plant Science, 2017, 261: 28-37 [19] Cui G, Zhao X, Liu S, et al. Beneficial effects of melatonin in overcoming drought stress in wheat seedlings. Plant Physiology and Biochemistry, 2017, 118: 138-149 [20] Antoniou C, Chatzimichail G, Xenofontos R, et al. Melatonin systemically ameliorates drought stress-induced damage in Medicago sativa plants by modulating nitro-oxidative homeostasis and proline metabolism. Journal of Pineal Research, 2017, 62: e12401 [21] Wang L, Feng C, Zheng X, et al. Plant mitochondria synthesize melatonin and enhance the tolerance of plants to drought stress. Journal of Pineal Research, 2017, 63: e12429 [22] Li C, Tan D, Liang D, et al. Melatonin mediates the regulation of ABA metabolism, free-radical scavenging, and stomatal behaviour in two Malus species under drought stress. Journal of Experimental Botany, 2015, 66: 669-680 [23] Wang J, Gao X, Wang X, et al. Exogenous melatonin ameliorates drought stress in Agropyron mongolicum by regulating flavonoid biosynthesis and carbohydrate metabolism. Frontiers in Plant Science, 2022, 13: 1051165 [24] Ahmad S, Kamran M, Ding R, et al. Exogenous melatonin confers drought stress by promoting plant growth, photosynthetic capacity and antioxidant defense system of maize seedlings. PeerJ, 2019, 7: e7793 [25] Wu W, Zhang Q, Ervin EH, et al. Physiological mecha-nism of enhancing salt stress tolerance of perennial ryegrass by 24-epibrassinolide. Frontiers in Plant Science, 2017, 8: 1017 [26] Arnon DI. Copper enzymes in isolated chloroplasts. Polyphenoloxidase in Beta vulgaris. Plant Physiology, 1949, 24: 1-15 [27] 高俊凤. 植物生理学实验指导. 北京: 高等教育出版社, 2006 [28] Okuda T, Matsuda Y, Yamanaka A, et al. Abrupt increase in the level of hydrogen peroxide in leaves of winter wheat is caused by cold treatment. Plant Phy-siology, 1991, 97: 1265-1267 [29] Bates LS, Waldren RP, Teare ID. Rapid determination of free proline for water-stress studies. Plant and Soil, 1973, 39: 205-207 [30] 王慧, 王冬梅, 张泽洲, 等. 外源褪黑素对干旱胁迫下黑麦草和苜蓿抗氧化能力及养分吸收的影响. 应用生态学报, 2022, 33(5): 1311-1319 [31] Zhang J, Shi Y, Zhang X, et al. Melatonin suppression of heat-induced leaf senescence involves changes in abscisic acid and cytokinin biosynthesis and signaling pathways in perennial ryegrass (Lolium perenne L.). Environmental and Experimental Botany, 2017, 138: 36-45 [32] Rajasekar M, Rabert GA, Manivannan P. The effect of triazole induced photosynthetic pigments and biochemical constituents of Zea mays L. (maize) under drought stress. Applied Nanoscience, 2016, 6: 727-735 [33] Siddiqui MH, Alamri S, Al-Khaishany MY, et al. Exo-genous melatonin counteracts NaCl-induced damage by regulating the antioxidant system, proline and carbohydrates metabolism in tomato seedlings. International Journal of Molecular Sciences, 2019, 20: 353 [34] 齐晓媛, 王文莉, 胡少卿, 等. 外源褪黑素对高温胁迫下菊花光合和生理特性的影响. 应用生态学报, 2021, 32(7): 2496-2504 [35] Xia H, Ni Z, Hu R, et al. Melatonin alleviates drought stress by a non-enzymatic and enzymatic antioxidative system in kiwifruit seedlings. International Journal of Molecular Sciences, 2020, 21: 852 [36] 张娜. 褪黑素处理对渗透胁迫下黄瓜种子萌发及幼苗生长的影响及其分子机制. 博士论文. 北京: 中国农业大学, 2014 [37] 崔桂宾. 干旱和PEG胁迫下小麦幼苗对褪黑素处理的生理响应及其蛋白质组学分析. 博士论文. 陕西杨凌: 西北农林科技大学, 2019 [38] Huang B, Chen Y, Zhao Y, et al. Exogenous melatonin alleviates oxidative damages and protects photosystem Ⅱ in maize seedlings under drought stress. Frontiers in Plant Science, 2019, 10: 677 [39] Martinez V, Nieves-Cordones M, Lopez-Delacalle M, et al. Tolerance to stress combination in tomato plants: New insights in the protective role of melatonin. Molecules, 2018, 23: 535 [40] Sharma A, Wang J, Xu D, et al. Melatonin regulates the functional components of photosynthesis, antioxidant system, gene expression, and metabolic pathways to induce drought resistance in grafted Carya cathayensis plants. Science of the Total Environment, 2020, 713: 136675 [41] 罗艳. 外源水杨酸和褪黑素对干旱胁迫下番茄幼苗生理特性及抗氧化酶基因表达的影响. 硕士论文. 南宁: 广西大学, 2022 [42] Gao W, Zhang Y, Feng Z, et al. Effects of melatonin on antioxidant capacity in naked oat seedlings under drought stress. Molecules, 2018, 23: 1580 [43] Liu B, Jing D, Liu F, et al. Serendipita indica alleviates drought stress responses in walnut (Juglans regia L.) seedlings by stimulating osmotic adjustment and antio-xidant defense system. Applied Microbiology and Biotechnology, 2021, 105: 8951-8968 [44] Alharby HF, Fahad S. Melatonin application enhances biochar efficiency for drought tolerance in maize varieties: Modifications in physio-biochemical machinery. Agronomy Journal, 2020, 112: 2826-2847 |
| [1] | ZHOU Dan, LI Haiyan, WANG Xiujun, LI Qingwei. Effects of exogenous melatonin on the osmotic regulation and antioxidant capacity of Ginkgo biloba seedlings under salt stress [J]. Chinese Journal of Applied Ecology, 2024, 35(2): 431-438. |
| [2] | LI Junliang, WANG Shibo, LI Yajun, HAO Xingyu, ZONG Yuzheng, ZHANG Dongsheng, SHEN Jie, SHI Xinrui, LI Ping. Effects of elevated CO2 concentration on cell structure and stress resistance physiology of Setaria italica under drought stress [J]. Chinese Journal of Applied Ecology, 2023, 34(5): 1281-1289. |
| [3] | HUI Kaishan, WU Zhaohan, ZHANG Yongli. Effects of phosphorus application rates on photosynthetic and senescence characteristics and yield of diffe-rent stems and tillers of wheat under water-saving supplementary irrigation [J]. Chinese Journal of Applied Ecology, 2023, 34(2): 451-462. |
| [4] | ZHAO Lei, JIN Haidi, CAO Xiaoyun, DENG Wenhui, DU Lingjuan. Physiological response to drought stress and drought resistance of six Helleborus orientlis cultivars [J]. Chinese Journal of Applied Ecology, 2023, 34(10): 2644-2654. |
| [5] | ZHAO Hai-liang, ZUO Lu, ZHANG Lu, GUO Tian-yu, ZHANG Yi, LI Xiao-jing, HU Xiao-hui, WANG Yu-ping. Mitigation of exogenous melatonin on photoinhibition of tomato seedlings under chilling stress [J]. Chinese Journal of Applied Ecology, 2023, 34(1): 151-159. |
| [6] | WU Peng, LYU Jian, YU Ji-hua, LIU Na, LI Jin-wu, JIN Li, JIN Ning, WANG Shu-ya. Effects of melatonin on photosynthetic properties and osmoregulatory substance contents of cucumber seedlings under salt-alkali stress [J]. Chinese Journal of Applied Ecology, 2022, 33(7): 1901-1910. |
| [7] | ZHANG Yong-e, ZHAO Yang, LU Wei-wei, YU Xin-xiao, ZHANG Xiao-ming, WANG Zhao-yan, LIU Bing, XIN Yan. Effects of CO2 concentration and soil water content on short-term water-use efficiency at whole-plant level [J]. Chinese Journal of Applied Ecology, 2022, 33(6): 1505-1510. |
| [8] | WANG Hui, WANG Dong-mei, ZHANG Ze-zhou, REN Huai-xin, HUANG Wei, XIE Zheng-feng. Effects of exogenous melatonin on antioxidant capacity and nutrient uptake of Lolium perenne and Medicago sativa under drought stress [J]. Chinese Journal of Applied Ecology, 2022, 33(5): 1311-1319. |
| [9] | LI Yue-ling, JIN Ze-xin, LUO Guang-yu, CHEN Chao, SUN Zhong-shuai, WANG Xiao-yan. Effects of arbuscular mycorrhizal fungi inoculation on non-structural carbohydrate contents and C:N:P stoichiometry of Heptacodium miconioides under drought stress [J]. Chinese Journal of Applied Ecology, 2022, 33(4): 963-971. |
| [10] | FENG Xiao-long, LIU Ran, LI Cong-juan, WANG Yu-gang, KONG Lu, WANG Zeng-ru. Stem photosynthesis and its main influencing factors of Haloxylon ammodendron and Tamarix ramosissima. [J]. Chinese Journal of Applied Ecology, 2022, 33(2): 344-352. |
| [11] | WU Liang, GAO Ge, SHI Shuang, LI Long-xuan, PENG Xiu-juan, LI Wen-hui, WANG Ping, ZHANG Zhi-qiang. Effects of water level variations on survival, morphological phenotype and responsiveness of tadpoles to phytohemagglutinin [J]. Chinese Journal of Applied Ecology, 2022, 33(12): 3427-3432. |
| [12] | XU Chen-xiao, ZHANG Xiao-yu, LIU Chao-yue, LIU Kun, BI Huan-gai, AI Xi-zhen. Alleviating effect of exogenous melatonin and calcium on the peroxidation damages of cucumber under high temperature stress [J]. Chinese Journal of Applied Ecology, 2022, 33(10): 2725-2735. |
| [13] | SUN Xiao-li, JIA Chun-yan, TIAN Shou-le, XU Wen-yan, WANG Jin-ping, RAN Kun, SHEN Guang-ning. Effects of exogenous methylglyoxal on chesnut seedlings under drought stress [J]. Chinese Journal of Applied Ecology, 2022, 33(1): 104-110. |
| [14] | QI Xiao-yuan, WANG Wen-li, HU Shao-qing, LIU Meng-yu, ZHENG Cheng-shu, SUN Xian-zhi. Effects of exogenous melatonin on photosynthesis and physiological characteristics of chry-santhemum seedlings under high temperature stress [J]. Chinese Journal of Applied Ecology, 2021, 32(7): 2496-2504. |
| [15] | WANG Si-qi, ZHOU Guang-sheng, ZHOU Meng-zi, LYU Xiao-min, ZHOU Li, JI Yu-he. Photosynthetically physiological mechanism of Stipa krylovii withered and yellow phenology response to precipitation under the background of warming [J]. Chinese Journal of Applied Ecology, 2021, 32(3): 845-852. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||