[1] 李宛宣,王世敏,赵雁.喷施ALA对紫花苜蓿耐热性的诱导效应[J].草地学报,2019,27(5):1188-1194 [2] AKRAM N A,ASHRAF M. Regulation in plant stress tolerance by a potential plant growth regulator,5-Aminolevulinic acid[J]. Journal of Plant Growth Regulation,2013,32(3):663-679 [3] HABIBA U,ALI S,RIZWAN M,et al. The Ameliorative role of 5-aminolevulinic acid (ALA) under Cr stress in two maize cultivars showing differential sensitivity to Cr stress tolerance[J]. Journal of Plant Growth Regulation,2018,38(3):788-798 [4] GILL R A,ALI B,ISLAM F,et al. Physiological and molecular analyses of black and yellow seeded Brassica napus regulated by 5-aminolivulinic acid under chromium stress[J]. Plant Physiology&Biochemistry,2015(94):130-143 [5] KORKMAZ A,KORKMAZ Y,DEMIRKIRAN A R. Enhancing chilling stress tolerance of pepper seedlings by exogenous application of 5-aminolevulinic acid[J].Environmental and Experimental Botany,2010,67(3):495-501 [6] MARUYAMA N A,HIRAI M Y,FUNADA S,et al. Exogenous application of 5-aminolevulinic acid increases the transcript levels of sulfur transport and assimilatory genes,sulfate uptake,and cysteine and glutathione contents in Arabidopsis thaliana[J]. Soil Science&Plant Nutrition,2010,56(2):281-288 [7] 李明安,马力,郝麒,等. 5-氨基乙酰丙酸对马铃薯叶片光合特性及产量和品质的影响[J/OL].中国蔬菜,2020(11):43-52[2020-11-10]. http://kns.cnki.net/kcms/detail/11.2326.S.20201104.1701.008.html [8] WANG Y X,WEI S M,WANG J N,et al. Exogenous application of 5-aminolevulinic acid on wheat seedlings under drought stress enhances the transcription of psbA and psbDgenes and improves photosynthesis[J]. Brazilian Journal of Botany,2018,41(2):1-11 [9] WU Y,LIAO W,DAWUDA M M,et al. 5-Aminolevulinic acid (ALA) biosynthetic and metabolic pathways and its role in higher plants:a review[J]. Journal of Plant Growth Regulation,2019(87):357-374 [10] SASIKALA C,RAMANA C V,RAO P R. 5-aminolevulinic acid:a potential herbicide insecticide from microorganisms[J]. Biotechnology Progress,1994,10(5):451-459 [11] 马娜,齐琳,高晶晶,等. 5-ALA对高温下无花果扦插幼苗的生长及叶片叶绿素荧光特性的影响[J].南京农业大学学报,2015,38(4):546-553 [12] 张静. ALA和PHBA缓解黄瓜高温胁迫时以及转fhy3基因拟南芥中基因组DNA甲基化变化[D].泰安:山东农业大学,2013:10-11 [13] 孙永平. 5-氨基乙酰丙酸(ALA)提高逆境条件下西瓜幼苗叶片光合与光抑制保护机理研究[D].南京:南京农业大学,2009:21-27 [14] GORAYA G K,KAUR B,ASTHIR B,et al. Rapid injuries of high temperature in plants[J]. Journal of Plant Biology,2017,60(4):298-305 [15] BITA C E,GERATS. Plant tolerance to high temperature in a changing environment:scientific fundamentals and production of heat stress-tolerant crops[J]. Frontiers in Plant Science,2013(4):273 [16] WAHID A,GELANI S,ASHRAF M,et al. Heat tolerance in plants:An overview[J]. Environmental&Experimental Botany,2007,61(3):199-223 [17] SUZUKI N,KOUSSEVITZKY S,MITTLER R,et al. ROS and redox signalling in the response of plants to abiotic stress[J]. Plant Cell&Environment,2012,35(2):259-270 [18] MUHAMMAD M Z,ABDUL M,ABDUL R,et al. Exploiting agronomic and biochemical traits to develop heat resilient cotton cultivars under climate change scenarios[J]. Agronomy,2021,11(9):1885-1888 [19] 何亚丽,胡雪华,金浩.植物激素对耐热性的调控机制及其在冷地型草坪草研究中的应用前景[J].上海农学院学报,2000(1):67-73 [20] 董文科,马祥,周学文,等.外源甜菜碱对低温胁迫下紫花苜蓿幼苗生理特性的影响[J].草地学报,2019,27(1):130-140 [21] 李合生.植物生理生化原理和技术[M].北京:高等教育出版社,2000:260-267 [22] 叶尚红.植物生理生化实验教程[M].昆明:云南科学技术出版社,2004:81-83 [23] 石永红,万里,刘建宁,等.多年生黑麦草抗旱性主成分及隶属函数分析[J].草地学报,2010,18(5):669-672 [24] YANNIS E V,ELENI T,EVANGELIA V A,et al. Recurrent Water Deficit and Epigenetic Memory in Medicago SativaL. Varieties[J]. Applied Sciences,2020,10(9):3110-3115 [25] 韩瑞宏,赵大华,陈晶晶,等.不同苜蓿种质资源苗期耐热性综合评价[J].中国草地学报,2015,37(3):48-54 [26] RHAMAN M S,IMRAN S,KARIM M M,et al. 5-aminolevulinic acid-mediated plant adaptive responses to abiotic stress[J]. Plant Cell Reports,2021(40):1451-1469 [27] 王冬云,李旭,徐丽,等. 5-氨基乙酰丙酸(ALA)提高两种园林植物叶片耐热性效应[J].植物学研究,2018,7(3):350-365 [28] LIU T,XU J,ZHANG J,et al. Exogenous 5-aminolevulinic acid pretreatment ameliorates oxidative stress triggered by low-temperature stress of Solanum lycopersicum[J]. Acta Physiol Plant,2018,40(12):210-212 [29] LIU D,HU L Y,ALI B,et al. Influence of 5-aminolevulinic acid on photosynthetically related parameters and gene expression in Brassica napus L. under drought stress[J]. Soil Science and Plant Nutrition,2016,62(3):254-262 [30] 刘大林,张华,曹喜春,等.夏季高温胁迫对紫花苜蓿部分生理生化指标的影响[J].草地学报,2013,21(5):933-937 [31] 解玉玲.高温胁迫对植物生理影响的研究进展[J].吉林农业,2019(8):107-108 [32] 韩明鹏,高永革,王成章,等.高温胁迫对紫花苜蓿的影响及其适应机制的相关研究[J].基因组学与应用生物学,2010,29(3):563-569 [33] 赵雁,车伟光,毕玉芬."德钦"紫花苜蓿苗期耐热性综合评价[J].北方园艺,2015(20):69-73 [34] 王宏辉,顾俊杰,房伟民,等.不同品种红掌叶片细胞膜稳定性和渗透调节物质对高温胁迫的响应[J].上海农业学报,2020,36(6):24-27 [35] 冯汉青,冯媛,孙坤,等. 5-氨基乙酰丙酸和钙离子对NaCl胁迫下当归种子萌发的影响及对高温下幼苗抗氧化酶的调节作用[J].西北师范大学学报:自然科学版,2020(2):79-86 [36] LOGAN B A,KORNYEYEV D,HARDISON J,et al. The role of antioxidant enzymes in photoprotection[J]. Photosynthesis Research,2006,88(2):119-132 [37] 陈新宜,宋宇航,张孟寒,等.干旱对不同品种小麦幼苗的生理生化胁迫以及外源5-氨基乙酰丙酸的缓解作用[J/OL].作物学报:1-12[2021-09-20].http://kns.cnki.net/kcms/detail/11.1809.S.20210802.1756.004.html [38] 王鹏,王铁兵,王瑞,等.外源5-氨基乙酰丙酸对干旱胁迫下玉米幼苗生理特性及抗氧化酶基因表达的影响[J].干旱地区农业研究,2021,39(1):75-81 [39] KATUWAL K B,ROWE S,JESPERSEN D. The use of 5-aminolevulinic acid to reduce heat stress related damages in tall fescue[J]. Crop Science,2020,61(5):3206-3218 [40] 武玥.外源5-氨基乙酰丙酸(ALA)缓解黄瓜幼苗盐胁迫的效果及机理研究[D].兰州:甘肃农业大学,2018:5-6 [41] ZHANG C P,LI C Y,YUAN F G,et al. Role of 5-aminolevulinic acid in the salinity stress response of the seeds and seedlings of the medicinal plant Cassia obtusifolia L.[J]. Botanical Studies,2013,54(1):18-19 [42] 叶自慧,叶向阳,何培磊,等. ALA对菊花光合作用和营养生长光照胁迫效应的缓解作用[J].北方园艺,2021(7):60-65 |