[1] 蒲红艳,陈亚宁,李卫红. 干旱荒漠区新垦绿洲土壤改良措施对盐分变化的影响研究-以克拉玛依农业开发区为例[J]. 干旱区资源与环境,2007,21(7):160-164 [2] 齐琪,马书荣,徐维东. 盐胁迫对植物生长的影响及耐盐生理机制研究进展[J]. 分子植物育种,2020,18(8):2741-2746 [3] CHEN T,CHRISTENSEN M,NAN Z B,et al. Effects of grazing intensity on seed size,germination and fungal colonization of Lespedeza davurica in a semi-arid grassland of northwest China[J]. Journal of Arid Environments,2017,144(9):91-97 [4] 佟莉蓉,王娟,张亚妮,等. 不同种衣剂配方对达乌里胡枝子幼苗生长和生理特性的影响[J]. 草地学报,2020,28(3):844-851 [5] XU B,GAO Z,WANG J,et al. Morphological changes in roots of Bothriochloa ischaemum intercropped with Lespedeza davurica following phosphorus application and water stress[J]. Plant Biosystems,2013,149(2):298-306 [6] 夏传红,赵祥,邢毅,等. 野生达乌里胡枝子栽培条件下的生长特性研究[J]. 草原与草坪,2010,30(2):74-78 [7] ARNAO M B,HERNÁNDEZ R J. Melatonin:plant growth regulator and/or biostimulator during stress[J]. Trends in Plant Science,2014,19(12):789-797 [8] YAO X Q,CHU J Z,WANG G Y. Effects of selenium on wheat seedlings under drought stress[J]. Biological Trace Element Research,2009,130(3):283-290 [9] LUO Y,XIE Y Y,HE D,et al. Exogenous trehalose protects photosystem II by promoting cyclic electron flow under heat and drought stresses in winter wheat[J]. Plant Biology,2021,23(5):770-776 [10] AHMED F,JAVED B,RAZZAQ A,et al. Applications of copper and silver nanoparticles on wheat plants to induce drought tolerance and increase yield[J]. IET Nanobiotechnology,2021,15(1):68-78 [11] WANG Y X,SUO B,ZHAO P F,et al. Effect of exogenous abscisic acid on psbA expression at grain filling stage in two wheat cultivars under drought stress[J]. Acta Agronomica Sinica,2011,37(8):1372-1377 [12] KANG G Z,LI G Z,LIU G Q,et al. Exogenous salicylic acid enhances wheat drought tolerance by influence on the expression of genes related to ascorbate-glutathione cycle[J]. Biologia Plantarum,2013,57(4):718-724 [13] BHARDWAJ D R,SINGH N,SHARMA A,et al. Hydrogen peroxide regulates antioxidant responses and redox related proteins in drought stressed wheat seedlings[J]. Physiology and Molecular Biology of Plants,2021,27(1):151-163 [14] ASHRAF M A M S. Exogenous application of ascorbic acid stimulates growth and photosynthesis of wheat (Triticum aestivum L.) under drought[J]. Soil & Environment,2012,31(1):72-77 [15] 张杰,陈彪,马晓寒,等. 气体信号分子在植物干旱胁迫下的调控作用及机制的研究进展[J]. 中国农业科技导报,2018,20(12):52-58 [16] 王秋艳. 硫化氢作为一种新型气体信号分子的研究进展[J]. 化学工程师,2021,35(9):48-51 [17] 李萱,刘博文,高双红,等. 外源硫化氢对不同弱光下高羊茅形态和生理指标的影响[J]. 草地学报,2021,29(11):2435-2441 [18] 刘建新,刘瑞瑞,贾海燕,等. 外源H2S 对盐碱胁迫下裸燕麦幼苗生长和生理特性的影响[J]. 麦类作物学报,2021,41(2):245-253 [19] 刘锐锋,郭希凯,张华. 硫化氢对小麦种子萌发早期淀粉酶活性的影响[J]. 安徽农业科学,2010,38(14):7218-7219 [20] 金竹萍,方慧慧,张丽萍,等. 硫化氢对拟南芥在干旱胁迫条件下的生理影响[J]. 山西大学学报(自然科学版),2013,36(1):113-117 [21] 王鸿蕉,张丽萍,刘志强,等. 外源硫化氢对冷胁迫下白菜幼苗生长和光合作用的影响[J]. 西北植物学报,2015,35(4):780-786 [22] 杨靖东,高青海. NaHS对大蒜衰老与生理特性的影响[J]. 热带作物学,2012,33(8):1435-1439 [23] 孙晓莉,张鑫荣,田寿乐,等. 外源硫化氢处理对板栗幼苗干旱胁迫抗性的影响[J]. 北方园艺,2017(15):7-12 [24] 吴单华,李应林,夏眴,等. 硫化氢供体硫氢化钠处理提高小麦对高温和干旱胁迫的综合抵抗能力[J]. 云南师范大学学报(自然科学版),2013,33(6):29-35 [25] 谢平凡,邱冬冬,陈珍. 外源硫化氢缓解水稻盐胁迫的作用机理[J]. 贵州农业科学,2017,45(3):8-13 [26] 王开喜,杨耀国,王永新,等. 硫化氢浓度对盐胁迫下胡枝子种子萌发和幼苗生长的影响[J]. 山西农业科学,2022,50(10):1396-1401 [27] 李合生. 植物生理生化实验原理和技术[M]. 北京:高等教育出版社,2000:164-169 [28] 王红燕,张淑英. 外源硫化氢对盐胁迫下棉花幼苗生长及渗透调节系统的影响[J]. 西南农业学报,2020,33(11):2483-2489 [29] 高晓兰,孙茂祥,吴雪莲,等. 外源硫化氢对成龄桃树根系生长的影响[J]. 山东农业科学,2022,54(12):76-80 [30] 高双红,李媛英,刘博文,等. H2S对弱光胁迫下高羊茅幼苗生理特性和内源激素的影响[J]. 草地学报,2021,29(10):2233-2239 [31] 李东波,肖朝霞,刘灵霞,等. 外源硫化氢对豌豆根尖及其边缘细胞的影响[J]. 植物学报,2010,45(3):354-362 [32] 闫慧萍,彭云玲,赵小强,等. 外源24-表油菜素内酯对逆境胁迫下玉米种子萌发和幼苗生长的影响[J]. 核农学报,2016,30(5):988-996 [33] 姚富文. 苹果耐高温基因的鉴定及褪黑素对高温胁迫的缓解效应[D]. 郑州:河南农业大学,2021:32-33 [34] 刘建明,吕跃东. 盐胁迫下山杏叶片生理响应特征研究[J]. 防护林科技,2023(4):51-54 [35] 郑州元,林海荣,崔辉梅. 外源硫化氢对盐胁迫下加工番茄幼苗生理生化特性的影响[J]. 华北农学报,2017,32(1):208-214 [36] FOYER C H,SHIGEOKA S. Understanding oxidative stress and antioxidant functions to enhance photosynthesis[J]. Plant Physiology,2011,155(1):93-100 [37] 高菲,戴志华,韩丹,等. 硒影响植物抗氧化系统的作用与机制[J]. 生物技术进展,2017,7(5):467-472 [38] DEINLEIN U,STEPHAN B A,HORIE T,et al. Plant salt-tolerance mechanisms[J]. Trends in Plant Science,2014,19(6):371-379 [39] 刘文瑜,杨宏伟,魏小红,等. 外源NO调控盐胁迫下蒺藜苜蓿种子萌发生理特性及抗氧化酶的研究[J]. 草业学报,2015,24(2):85-95 [40] TAO B B,LIU S Y,ZHANG C C,et al. VEGFR2 functions as an H2S-targeting receptor protein kinase with its novel Cys1045-Cys1024 disulfide bond serving as a specific molecular switch for hydrogen sulfide actions in vascular endothelial cells.[J]. Antioxidants & Redox Signaling,2013,19(5):448-464 [41] 张雪蒙,亢超,滕元旭,等. 外源硫化氢和水杨酸对盐胁迫下加工番茄幼苗生长与生理特性的影响[J]. 西北植物学报,2022,42(2):255-262 [42] KAYA C,UGURLAR F,ASHRAF M,et al. Nitric oxide and hydrogen sulfide work together to improve tolerance to salinity stress in wheat plants by upraising the AsA-GSH cycle[J]. Plant Physiology and Biochemistry,2023(194):651-663 [43] 胡文成. 水杨酸、脯氨酸、γ-氨基丁酸对盐胁迫下水稻抗氧化系统的调控效应[D]. 哈尔滨:东北农业大学,2017:25-28(责任编辑 刘婷婷)第32卷 第3期 Vol.32 No. 3草 地 学 报 ACTAAGRESTIASINICA 2024年 3月 |