[1] 刘铎, 杨庆山, 齐学斌, 等. 紫花苜蓿(Medicago sativa L.)耐盐碱研究进展[J]. 生物学杂志, 2021, 38(1):98-101 [2] 黄炜, 文亦芾. 紫花苜蓿研究进展[J]. 黑龙江畜牧兽医, 2018(13):42-44 [3] 张永锋, 梁正伟, 隋丽, 等. 盐碱胁迫对苗期紫花苜蓿生理特性的影响[J]. 草业学报, 2009, 18(4):232-237 [4] 张士功, 邱建军, 张华. 我国盐渍土资源及其综合治理[J]. 中国农业资源与区划, 2000(1):54-58 [5] 祝寿泉, 王遵亲. 盐渍土分类原则及其分类系统[J]. 土壤, 1989(2):106-109 [6] FIDALGO F, SANTOS A, SANTOS I, et al. Effects of Long-term Salt Stress on Antioxidant Defence Systems, Leaf Water Relations and Chloroplast Ultrastructure of Potato Plants[J]. Annals of Applied Biology, 2015, 145(2):185-192 [7] ASISH K P, ANATH B D. Salt Tolerance and Salinity Effects on Plants:A Review[J]. Ecotoxicology and Environmental Safety, 2005, 60(3):324-349 [8] 刘云芬, 彭华, 王薇薇, 等. 植物耐盐性生理与分子机制研究进展[J]. 江苏农业科学, 2019, 47(12):30-36 [9] DUBBELS R, REITER R J, KLENKE E, et al. Melatonin in Edible Plants Identified by Radioimmunoassa and by High Performance Liquid Chromatography-mass Spectrometry[J]. Journal of Pineal Research, 1995, 18(1):28-31 [10] ROSALES-CORRAL S, ACUNA-CASTROVIEJO D, TAN D X, et al. Accumulation of Exogenous Amyloid-Beta Peptide in Hippocampal Mitochondria Causes Their Dysfunction:A Protective Role for Melatonin[J]. Oxidative Medicine and Cellular Longevity, 2012, 7(11):843-849 [11] MURCH S J, CAMPBELL S, SAXENA P K. The Role of Serotonin and Melatonin in Plant Morphogenesis:Regulation of Auxin-induced Root Organogenesis in in vitro-cultured Explants of St. John's Wort(Hypericum perforatum L.)[J]. In Vitro Cellular & Developmental Biology-Plant, 2001, 37(6):786-793 [12] YANG L, YOU J, LI J, et al. Melatonin Promotes Arabidopsis Primary Root Growth in an IAA Dependent Manner[J]. Journal of Experimental Botany, 2021, 72(15):5599-5611 [13] ZHANG Z H, LIU L T, LI H Y, et al. Exogenous Melatonin Promotes the Salt Tolerance by Removing Active Oxygen and Maintaining Ion Balance in Wheat(Triticum aestivum L.)[J]. Frontiersin Plant Science, 2021, 12(3):391-404 [14] 银珊珊, 周国彦, 顾博文, 等. 褪黑素引发对干旱胁迫下黄瓜幼苗生理特性的影响[J]. 中国农学通报, 2022, 38(19):30-36 [15] 朱芹. 外源褪黑素和热处理对冷藏水蜜桃冷害发生的影响[D]. 扬州:扬州大学, 2020:20-29 [16] 陈舒雨. 外源褪黑素对铅胁迫下狗牙根萌发及幼苗生长的影响[D]. 雅安:四川农业大学, 2019:30-45 [17] 马征. 拟南芥褪黑素响应UV-B胁迫的功能和其合成酶表达研究[D]. 西安:西北大学, 2019:5-9 [18] 邹琦. 植物生理学实验指导[M]. 北京:中国农业出版社, 2003:112-141 [19] 刘跃威. 褪黑素对宝岛蕉幼苗氯化钠胁迫影响的研究[D]. 海口:海南大学, 2020:10-17 [20] ZHANG H J, ZHANG N, YANG R C, et al. Melatonin Promotes Seed Germination Under High Salinity by Regulating Antioxidant Systems, ABA and GA4Interaction in Cucumber (Cucumis sativus L.)[J]. Journal of Pineal Research, 2014, 57(3):269-279 [21] 郭爱华. 外源褪黑素对盐胁迫下苦菜幼苗生长的影响[J]. 江苏农业科学, 2022, 50(13):153-157 [22] 王利界, 周智彬, 常青, 等. 盐旱交叉胁迫对灰胡杨(Populus pruinosa)幼苗生长和生理生化特性的影响[J]. 生态学报, 2018, 38(19):7026-7033 [23] 雷晓敏. 18个紫花苜蓿品种耐盐性评价与耐盐品种筛选[D]. 呼和浩特:内蒙古农业大学, 2017:11-19 [24] 张雨靖. 褪黑素对盐胁迫下莱茵衣藻的抗氧化保护作用[D]. 西安:西北大学, 2019:23-28 [25] 李阳. 外源褪黑素对盐胁迫下棉花幼苗生长及光合特性的研究[D]. 阿拉尔:塔里木大学, 2021:34-35 [26] ZHOU X, ZHAO H, CAO K, et al. Beneficial Roles of Melatonin on Redox Regulation of Photosynthetic Electron Transport and Synthesis of D1 Protein in Tomato Seedlings Under Salt Stress[J]. Frontiers in Plant Science, 2016(7):1823-1828 [27] 李琳琳, 宋彦涛, 金华, 等. 外源褪黑素对干旱胁迫下番茄叶片光合特性和抗氧化酶系统的影响[J]. 大连民族大学学报, 2019(1):33-38 [28] 范海霞, 赵飒, 李静, 等. 外源褪黑素对盐胁迫下金盏菊幼苗生长、光合及生理特性的影响[J]. 热带作物学报, 2021, 42(5):1326-1334 [29] 尹赜鹏, 王珍琪, 齐明芳, 等. 外施褪黑素对盐胁迫下番茄幼苗光合功能的影响[J]. 生态学杂志, 2019, 38(2):467-475 |