Advance Search
CHEN Yu, LIN Su-Ying, HUANG Zhi-Ming, CAI Bin-Bin, WU Guang-Quan, PAN Zhi-Ping, WU Jin-Cheng. Response of Endogenous Nitric Oxide and Jasmonate Acid to Low Temperature Stress in Young Loquat Fruits[J]. Plant Science Journal, 2012, 30(6): 611-617. DOI: 10.3724/SP.J.1142.2012.60611
Citation: CHEN Yu, LIN Su-Ying, HUANG Zhi-Ming, CAI Bin-Bin, WU Guang-Quan, PAN Zhi-Ping, WU Jin-Cheng. Response of Endogenous Nitric Oxide and Jasmonate Acid to Low Temperature Stress in Young Loquat Fruits[J]. Plant Science Journal, 2012, 30(6): 611-617. DOI: 10.3724/SP.J.1142.2012.60611

Response of Endogenous Nitric Oxide and Jasmonate Acid to Low Temperature Stress in Young Loquat Fruits

More Information
  • Received Date: August 28, 2012
  • Revised Date: September 21, 2012
  • Published Date: December 29, 2012
  • Container seedlings of three-year-old loquat were treated with Nitric oxide (NO) production inhibitors L-NAME, NaN3 and NO scavenger cPTIO to investigate the effects of endogenous NO and Jasmonate acid (JA) content on young loquat (Eriobotrya japonica cv. Zaozhong No.6) fruits under low temperature stress and determine the signal transduction relationship between endogenous NO and JA.Results showed that induced the endogenous NO and JA content of young loquat fruits to increase by low temperature stress.NO scavenger and NO production inhibitors treatment inhibited the activities of CAT,POD and SOD.Meanwhile,NO scavenger and NO production inhibitors treatment increased the contents of H2O2 and MDA in young loquat fruits under low temperature stress,which enhanced lipid peroxidation.The injury of young loquat fruits was aggravated by low temperature stress.NO scavenger and NO production inhibitors treatment decreased the activities of LOX and AOS in young loquat fruits under low temperature stress,and the pathway of JA biosynthesis was restrained.The endogenous JA content of young loquat fruits was closely related to the changes in endogenous NO content.There may be a signal cross between NO and JA in response to low temperature stress in young loquat fruits.
  • [1]
    马向丽,魏小红,龙瑞军,崔文娟,万引琳.外源一氧化氮提高一年生黑麦草抗冷性机制[J].生态学报, 2005, 25(6): 1269-1274.
    [2]
    吴锦程,陈建琴,梁杰,杨伟搏,吴晶晶,陈丽钦,刘美琼,陈丽平.外源一氧化氮对低温胁迫下枇杷叶片AsA-GSH循环的影响[J].应用生态学报, 2009, 20(6): 1395-1400.
    [3]
    Cheong J J,Choi Y D.Methyl jasmonate as a vital substance in plants[J].Trends Genet, 2003, 19(7): 409-413.
    [4]
    冯斗,禤维言,黄政树,邓付园,谭湘.茉莉酸甲酯对低温胁迫下香蕉幼苗的生理效应[J].果树学报, 2009, 26(3): 390-393.
    [5]
    韩晋,田世平.外源茉莉酸甲酯对黄瓜采后冷害及生理生化的影响[J].园艺学报, 2006, 33(2): 289-293.
    [6]
    Thorpe M R,Ferrieri A P,Herth M M,Ferrieri R A.11C-imaging: Methyl jasmonate moves in both phloem and xylem,promotes transport of jasmonate,and of photoassimilate even after proton transport is decoupled[J].Planta, 2007, 226(2): 541-551.
    [7]
    李杰,陈康,唐静,赵方贵,刘新.NaCl胁迫下玉米幼苗中一氧化氮与茉莉酸积累的关系[J].西北植物学报, 2008, 28(8): 1629-1636.
    [8]
    李合生.植物生理生化实验原理与技术[M].北京: 高等教育出版社, 2000: 213-214.
    [9]
    邹琦.植物生理学实验指导[M].北京: 中国农业出版社, 2000: 166-167.
    [10]
    石延霞,于洋,傅俊范,李宝聚.病原菌诱导后黄瓜叶片中脂氧合酶活性与茉莉酸积累的关系[J].植物保护学报, 2008, 35(06): 486-490.
    [11]
    陈建勋,王晓峰.植物生理学实验指导[M].广州: 华南理工大学出版社, 2002: 119-127.
    [12]
    吴娟娟.大豆丙二烯氧化物合酶基因(GmAOS)的克隆和功能研究[D].南京: 南京农业大学, 2008: 64.
    [13]
    Bartosz G.Oxidative stress in plants [J].Acta Physiol Plant, 1997, 19: 47-64.
    [14]
    Dat J,Vandenabeele S,Vranová E,Van Montagu M,Inzé D,Van Breusegem F.Dual action of the active oxygen species during plant stress responses[J].Cell Mol Life Sci, 2000, 57: 779-795.
    [15]
    Wojtaszek P.Nitric oxide in plants: To NO or not to NO[J].Phytochemistry, 2000, 54(1): 1-4.
    [16]
    Schaller F.Enzymes of the biosynthesis of octadecanoid-derived signaling molecules[J].J Exp Bot, 2001, 52: 11-23.
    [17]
    徐伟,严善春.茉莉酸在植物诱导防御中的作用[J].生态学报, 2005, 25(8): 2074-2081.
    [18]
    吴劲松,种康.茉莉酸作用的分子生物学研究[J].植物学通报, 2002, 19(2): 164-170.
    [19]
    吴锦程,陈伟建,蔡丽琴,谢翠萍,黄世杰,林良津,叶美兰.外源NO对低温胁迫下枇杷幼果抗氧化能力的影响[J].林业科学, 2010, 46(9): 73-78.
    [20]
    刘鹏程,王辉,程佳强,黄久常.NO对小麦叶片干旱诱导膜脂过氧化的调节效应[J].西北植物学报, 2004, 24(1): 141-145.
    [21]
    吴雪霞,朱月林,朱为民,陈建林,刘正鲁.外源一氧化氮对NaCl胁迫下番茄幼苗生理影响[J].中国农业科学, 2006, 39(3): 575-581.
    [22]
    汤绍虎,周启贵,孙敏,毛薇.外源NO对渗透胁迫下黄瓜种子萌发、幼苗生长和生理特性的影响[J].中国农业科学, 2007, 40(2): 419-425.
    [23]
    Zhang H,Shen W B,Xu L L.Effects of nitric oxide on the germination of wheat seeds and its reactive oxygen species metabolisms under osmotic stress[J].Acta Bot Sinica, 2003, 45(8): 901-905.
    [24]
    张玲玲,肖强,叶文景,杨坚,朱珠,茹巧美,郑海雷.外源一氧化氮对氯化钠处理下秋茄幼苗抗氧化系统的调节效应[J].生态学杂志, 2007, 26(11): 1732-1737.
    [25]
    张绪成,上官周平,高世铭.NO对植物生长发育的调控机制[J].西北植物学报, 2005, 25(4): 812-818.
    [26]
    齐付国,李建民,段留生,李召虎.冠菌素和茉莉酸甲酯诱导小麦幼苗低温抗性的研究[J].西北植物学报, 2006, 26(9): 1776-1780.
    [27]
    Huang X,Stetmaier K,Michel C.Nitric oxide is induced by wounding and influences jasmonic acid signaling in Arabidopsis thaliana[J].Planta, 2004, 218: 938-946.
    [28]
    谢钟琛,李健.早钟6号枇杷幼果冻害温度界定及其栽培适宜区区划[J].福建果树, 2006(1): 7-11.
  • Related Articles

    [1]Feng Juan, Hua Ya-Wei, Zhang Zhi-Cheng, Liu Kang, Liu Bo, Zhang Feng. Response of the relationship between Pinus tabuliformis Carr. radial growth and climatic factors to abrupt changes in temperature in Qinling Zhen'an[J]. Plant Science Journal, 2021, 39(3): 268-277. DOI: 10.11913/PSJ.2095-0837.2021.30268
    [2]Shi Zhen-Zhen, Da Meng-Ting, Pang Hai-Long, Jia Ling-Yun, Sun Kun, Feng Han-Qing. Extracellular adenosine 5'-triphosphate mediates oxidative stress and cell death under cadmium stress by nitric oxide[J]. Plant Science Journal, 2020, 38(2): 269-277. DOI: 10.11913/PSJ.2095-0837.2020.20269
    [3]Guo Hui, Li Shu-Xing, Sun Ping-Yong, Deng Hua-Feng. Responses of antioxidant system in different genotypes of Oryza sativa seedlings to cold stress[J]. Plant Science Journal, 2019, 37(1): 63-69. DOI: 10.11913/PSJ.2095-0837.2019.10063
    [4]Chen Yin-Ping, Ke Yun-Qi, Yang Zhi-Juan, Yang Bo, Yan Zhi-Qiang, Yu Pei-Dong. Generation of endogenous NO and its ameliorating effects on oxidative damage in Bidens pilosa L. seedlings under Pb stress[J]. Plant Science Journal, 2018, 36(2): 264-272. DOI: 10.11913/PSJ.2095-0837.2018.20264
    [5]WU Jin-Cheng, WU Bi-Sha, HUANG Shen-Jian, CHEN Ci-Xian, YAN Liang, XU Hong-Bin, LIN Jian-Qiong. Phospholipase D and Lipoxygenase of Young Loquat Fruits in Response to Low Temperature Stress[J]. Plant Science Journal, 2015, 33(2): 203-209. DOI: 10.11913/PSJ.2095-0837.2015.20203
    [6]XU Zhang-Hua, LIU Jian, YU Kun-Yong, GONG Cong-Hong, TANG Meng-Ya, XIE Wan-Jun, LAI Ri-Wen, LI Zeng-Lu. Response of Pinus massoniana Leaf Area Index (LAI) to Climate Indicators in Fujian Province[J]. Plant Science Journal, 2013, 31(2): 114-123. DOI: 10.3724/SP.J.1142.2013.20114
    [7]CHI Hong, YUE Ming, LIU Xiao. Physiological Effects on UV-B Resistance of Wheat(Triticum aestivum L.)Seedlings Mediated by Jasmonic Acid[J]. Plant Science Journal, 2011, 29(6): 718-726.
    [8]SU Yan-Ping, LI Dun-Hai, WANG Kan, LIU Yong-Ding. Response of Nostoc sphaeroides(Cyanobacterium) to Low Culture Temperatures[J]. Plant Science Journal, 2008, 26(3): 310-314.
    [9]ZHANG Fu-Tie, ZHUANG Yan, YANG Zhi-Fan, YANG Hai-Yuan, ZHU Li-Li, HE Guang-Cun. Wild Rice Gene Expression in Response to Brown Planthopper (Nilaparvata lugens Stål) Feeding and Whitebacked Planthopper (Sogatella furcifera Horvath) Feeding[J]. Plant Science Journal, 2005, 23(1): 1-6.
    [10]Peng Yanhua, Liu Chengyun, Lu Dayan, Ye Wancheng. RESPONSE OF WATER HYACINTH LEAVES TO LOW TEMPERATURE STRESS——INCREASE IN ABSCISIC ACID AND SOLUBLE PROTEIN CONCENTRATIONS[J]. Plant Science Journal, 1992, 10(2): 123-127.

Catalog

    Article views (2709) PDF downloads (2239) Cited by()

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return