Scientia Agricultura Sinica ›› 2012, Vol. 45 ›› Issue (5): 936-942.doi: 10.3864/j.issn.0578-1752.2012.05.014

• STORAGE·FRESH-KEEPING·PROCESSING • Previous Articles     Next Articles

The Role of Reactive Oxygen Species in Heat Treatment-Induced Chilling Tolerance in Banana Fruit

 WANG  Hai-Bo, PANG  Xue-Qun, HUANG  Xue-Mei, ZHANG  Zhao-Qi   

  1. 1.广东食品药品职业学院食品科学系,广州510520
    2.华南农业大学园艺学院,广州510642
    3. 华南农业大学生命科学学院,广州510642
  • Received:2011-09-01 Online:2012-03-01 Published:2011-12-08

Abstract: 【Objective】The objective of this study is to investigate the role of reactive oxygen species (ROS) in heat -induced chilling tolerance in banana fruit.【Method】 In this study, 10 μmol•L-1 diphenylene iodonium (DPI), a NADPH oxidase specific inhibitor, was used to inhibit ROS generation in hot water treated fruits. After heat treatment (52℃ for 3 min), banana fruits were stored at 7℃. The chilling injury index, Fv/Fm, contents of H2O2 and  , activities of catalase (CAT) and ascorbate peroxidase (APX), gene expressions of MaCAT and MaAPX genes were determined.【Result】Compared with heat-treated fruits, fruits treated with DPI prior to heat treatment exhibited higher chilling injury index and lower values of Fv/Fm, Moreover, DPI treatment prevented heat-triggered H2O2 and   accumulation, and inhibited the increase of the activities of CAT and APX, and the expressions of MaCAT and MaAPX genes. 【Conclusion】 It is suggested that pre-treatment with DPI prevented the rapid accumulation of ROS induced by heat treatment, which counteracted heat treatment-induced chilling tolerance accordingly had a negative effect on the chilling tolerance induced by heat treatment and showed serious chilling injury symptoms. The reactive oxygen species induced by heat treatment might serve as signal molecules involving in chilling resistance of banana fruits.

Key words: banana, reactive oxygen species, heat treatment, chilling tolerance

[1]张昭其, 庞学群. 南方水果贮藏保鲜技术. 南宁: 广西科学技术出版社, 2008.

Zhang Z Q, Pang X Q. Technique of Postharvest Handling and Storage of South China Fruits. Nanning: Guangxi Technology Press, 2008. (in Chinese)

[2]陆旺金, 张昭其, 季作梁. 热带亚热带果蔬低温贮藏冷害及御冷技术. 植物生理学通讯, 1999, 2(35): 158-163.

Lu W J, Zhang Z Q, Ji Z L. Chilling injury and approaches to reduce chilling injury of tropical and subtropical fruits and vegetables during low temperature storage. Plant Physiology Communications, 1999, 2 (35): 158-163. (in Chinese)

[3]HPitzschke A H, HHirt H. Mitogen-activated protein kinases and reactive oxygen species signaling in plants. Plant Physiology, 2006, 141: 351-356.

[4]Prasad T K, Anderson M D, Martin B A. Evidence for chilling- induced oxidative stress in maize seedlings and a regulatory role for hydrogen peroxide. The Plant Cell, 1994(6): 65-74.

[5]Xia X J, Wang Y J, Zhou Y H, Tao Y, Mao W H, Shi K, Asami T, Chen Z X, Yu J Q. Reactive oxygen species are involved in brassinosteroid-induced stress tolerance in cucumber. Plant Physiology, 2009, 150(2): 801-814.

[6]Shu D F, Wang L Y, Duan M, Deng Y S, Meng Q W. Antisense-mediated depletion of tomato chloroplast glutathione reductase enhances susceptibility to chilling stress. Plant Physiology and Biochemistry, 2011, 49(10): 1228-1237.

[7]Lurie S. Postharvest heat treatments. Postharvest Biology and Technology, 1998, 14: 257-269.

[8]Sala J M, Lafuente M T. Catalase enzyme activity is related to tolerance of mandarin fruits to chilling. Postharvest Biology and Technology, 2000, 20: 81-89.

[9]Holland N, Menezes H C, Lafuente M T. Carbohydrates as related to the heat-induced chilling tolerance and respiratory rate of ‘Fortune’ mandarin fruit harvested at different maturity stages. Postharvest Biology and Technology, 2002, 25: 181-191.

[10]Vicente A R, Martinez G A, Chaves A R, Civello P M. Effect of heat treatment on strawberry fruit damage and oxidative metabolism during storage. Postharvest Biology and Technology, 2006, 40(2): 116-122.

[11]Sapitnitskaya M, Maul P, McCollum T G, Guy C L, Weiss B, Samach A, Porat R. Postharvest heat and conditioning treatments activate different molecular responses and reduce chilling injuries in grapefruit. Journal of Experimental Botany, 2006, 57: 2943-2953.

[12]Mirdehghan S H, Rahemi M, Martinez-Romero D, Guillen F, Valverde J M, Zapata P J, Serrano M, Valero D. Reduction of pomegranate chilling injury during storage after heat treatment: Role of polyamines. Postharvest Biology and Technology, 2007, 44: 19-25.

[13]Volkov R A, Panchuk I I, Mullineaux P M, HSchöffl F. Heat stress-induced H2O2 is required for effective expression of heat shock genes in Arabidopsis. Plant Molecular Biology, 2006, 61: 733-746.

[14]Htan W, Meng Q W, Brestic M, Olsovska K, Yang X H. Photosynthesis is improved by exogenous calcium in heat-stressed tobacco plants. Journal of Plant Physiology, 2011, 168(17): 2063-2071.

[15]Liu F G, Tu K, Shao X F, Zhao Y, Tu S C, Su J, Hou Y P, Zou X R. Effect of hot air treatment in combination with Pichia guilliermondii on postharvest anthracnose rot of loquat fruit. Postharvest Biology and Technology, 2010, 58(1): 65-71.

[16]Wang H B, Zhang Z Q, Huang X M, Jiang Y M, Pang X Q. Hot water dipping induced chilling resistance of harvested banana fruit. Acta Horticulturae, 2008, 804: 513-522.

[17]Kondo S, Kanlayanarat S, Kittikorn, M. Preharvest antioxidant activities of tropical fruit and the effect of low temperature storage on antioxidants and jasmonates. Postharvest Biology and Technology, 2005, 36: 309-318.

[18]王爱国, 罗广华.植物的超氧物自由基与羟胺反应的定量关系.植物生理学通讯, 1990(6): 55-57.

Wang A G, Luo G H. Uantitative relation between the hydroxylamine and superoxide anion radicals in plants. Plant Physiology Communications, 1990(6): 55-57. (in Chinese)

[19]Zhou B Y, Wang J H, Guo Z F, Tan H Q, Zhu X C. A simple Colorimetric method for determination of hydrogen peroxide in plant tissues. Plant Growth Regulation, 2006, 49: 113-118.

[20]曾韶西, 王以柔, 刘鸿先. 低温光照下与黄瓜子叶叶绿素降低有关的酶促反应. 植物生理学报, 1991, 17(2): 177-182.

Zeng S X, Wang Y R, Liu H X. Some enzymatic reactions related to chlorophyll degradation in cucumber cotyledons under chilling in the light. Acta Phytophysiologica Sinica, 1991, 17(2): 177-182. (in Chinese)

[21]沈文飚, 徐朗莱, 叶茂炳, 张荣铣. 抗坏血酸过氧化物酶活性测定的探讨. 植物生理学通讯, 1996, 32(3): 203-205.

Shen W B, Xu L L, Ye M B, Zhang R X. Study on determination of ASP activity. Plant Physiology Communications, 1996, 32(3): 203-205. (in Chinese)

[22]刘学庆, 王秀峰, 朴永吉. 蝴蝶兰不同品种耐冷特性的研究. 园艺学报, 2007, 34(2): 425-430.

Liu X Q, Wang X F, Piao Y J. A study on cold tolerance of different phalaenopsis cultivars. Acta Horticulturae Sinica, 2007, 34(2): 425-430. (in Chinese)

[23]杨虎清, 周存山, 霍艳荣, 庞林江, 王允祥. 利用叶绿素荧光预测水蜜桃果实冷害的研究. 园艺学报, 2008, 35(7): 945-950.

Yang H Q, Zhou C S, Huo Y R, Pang L J, Wang Y X. Chlorophyll fluorescence as a tool to predict formation of chilling injury of peaches in storage. Acta Horticulturae Sinica, 2008, 35(7): 945-950. (in Chinese)

[24]Konigshofer H, Tromballa H W, Loppert H G. Early events in signalling high-temperature stress in tobacco BY2 cells involve alterations in membrane fluidity and enhanced hydrogen peroxide production.Plant and Cell Environment, 2008(31): 1771-1780.

[25]王海波, 黄雪梅, 张昭其. 植物逆境胁迫中活性氧和钙信号的关 系. 北方园艺, 2010(22): 189-194.

Wang H B, Huang X M, Zhang Z Q. Relationship between reactive oxygen species and calcium signaling in plant stress. Northern Horticulture, 2010(22): 189-194. (in Chinese)

[26]王国莉, 郭振飞. 植物耐冷性分子机理的研究进展. 植物学通报, 2003, 20(6): 671-679.

Wang G L, Guo Z F. The progress of researches on molecular mechanism of chilling tolerance in plants. Chinese Bulletin of Botany, 2003, 20(6): 671-679. (in Chinese)

[27]Dat J F, Lopez Delgado H, Foyer C H, Scott I M. Parallel changes in H2O2 and catalase during thermotolerance induced by salicylic acid or heat acclimation in mustard seedlings. Plant Physiology, 1998, 116(4): 1351-1357.

[28]Jiang M, Zhang J.Cross-talk between calcium and reactive oxygen species originated from NADPH oxidase in abscisic acid-induced antioxidant defence in leaves of maize seedlings.Plant and Cell Environment, 2003, 26: 929-939.

[29]Agarwal S, Sairam R K, Srivastava G C, Tyagi A, Meena R C. Role of ABA, salicylic acid, calcium and hydrogen peroxide on antioxidant enzymes induction in wheat seedlings. Plant Science, 2005, 169: 559-570.

[30]Li S W, Xue L G, Xu S J, Feng H Y, An L Z. IBA-induced changes in antioxidant enzymes during adventitious rooting in mung bean seedlings: The role of H2O2. Environmental and Experimental Botany, 2009, 66: 442-450.
[1] HE Lei,LU Kai,ZHAO ChunFang,YAO Shu,ZHOU LiHui,ZHAO Ling,CHEN Tao,ZHU Zhen,ZHAO QingYong,LIANG WenHua,WANG CaiLin,ZHU Li,ZHANG YaDong. Phenotypic Analysis and Gene Cloning of Rice Panicle Apical Abortion Mutant paa21 [J]. Scientia Agricultura Sinica, 2022, 55(24): 4781-4792.
[2] SHA RenHe,LAN LiMing,WANG SanHong,LUO ChangGuo. The Resistance Mechanism of Apple Transcription Factor MdWRKY40b to Powdery Mildew [J]. Scientia Agricultura Sinica, 2021, 54(24): 5220-5229.
[3] HU RongRong,DING ShiJie,GUO Yun,ZHU HaoZhe,CHEN YiChun,LIU Zheng,DING Xi,TANG ChangBo,ZHOU GuangHong. Effects of Trolox on Proliferation and Differentiation of Pig Muscle Stem Cells [J]. Scientia Agricultura Sinica, 2021, 54(24): 5290-5301.
[4] ZHANG LongYan,CHENG GongMin,WEI HengLing,WANG HanTao,LU JianHua,MA ZhiYing,YU ShuXun. Chilling Tolerance Identification and Response to Cold Stress of Gossypium hirsutum Varieties (Lines) During Germination Stage [J]. Scientia Agricultura Sinica, 2021, 54(1): 19-33.
[5] QI Yue,LÜ JunYuan,ZHANG Yue,WEI Jie,ZHANG Na,YANG WenXiang,LIU DaQun. Puccinia triticina Effector Protein Pt18906 Triggered Two-Layer Defense Reaction in TcLr27+31 [J]. Scientia Agricultura Sinica, 2020, 53(12): 2371-2384.
[6] GU ChaoHeng,YAN YanYan,WEI XiYa,SHI QingHua,GONG Biao. Physiological Mechanism of S-adenosylmethionine on Alleviating Chlorothalonil Residue in Tomato [J]. Scientia Agricultura Sinica, 2019, 52(6): 1058-1065.
[7] HU ChunHua, DENG GuiMing, SUN XiaoXuan, ZUO CunWu, LI ChunYu, KUANG RuiBin, YANG QiaoSong, YI GanJun. Establishment of an Efficient CRISPR/Cas9-Mediated Gene Editing System in Banana [J]. Scientia Agricultura Sinica, 2017, 50(7): 1294-1301.
[8] WANG Hai-bo, LI Lu, SU Xin-guo, ZHANG Zhao-qi, PANG Xue-qun. The Role of CBF Cold Response Pathway Gene in Heat Treatment-Induced Chilling Tolerance in Banana Fruits [J]. Scientia Agricultura Sinica, 2016, 49(14): 2763-2771.
[9] QIAO Yong-xu, ZHANG Yong-ping, GAO Li-hong. Effect of Root Border Cells on Reactive Oxygen Metabolism and Root Activity of Cucumber and Figleaf Gourd Seedlings Under Cinnamic Acid Stress [J]. Scientia Agricultura Sinica, 2015, 48(8): 1579-1587.
[10] WANG Guo-jiao, WANG Jia-yu, MA Dian-rong, MIAO Wei, ZHAO Ming-hui, CHEN Wen-fu. Responses of Antioxidant System to Cold Water Stress in Weedy and Cultivated Rice with Different Chilling Sensitivity [J]. Scientia Agricultura Sinica, 2015, 48(8): 1660-1668.
[11] LI Zhen-hua, WANG Jian-hua. Advances in Research of Physiological and Molecular Mechanism in Seed Vigor and Germination [J]. Scientia Agricultura Sinica, 2015, 48(4): 646-660.
[12] ZHANG Chao-yi, FAN Xiao-lin. Dynamic Kinetic Characteristics of Different Ratios of Ammonium and Nitrate Absorbed by Banana Seedlings [J]. Scientia Agricultura Sinica, 2015, 48(14): 2777-2784.
[13] WANG Hai-bo, GONG Jia-jian, SU Xin-guo, ZHANG Zhao-qi. The Role of MaCaM Gene in Temperature Stress and Fruit Ripening of Harvested Banana [J]. Scientia Agricultura Sinica, 2015, 48(12): 2401-2407.
[14] TAN Wei-ping, PANG Xue-qun, ZHANG Zhao-qi, HUANG Xue-mei. Accumulation of Reactive Oxygen Species Related to Disease Resistance Induced by BABA in Postharvest Banana (Musa AAA. cv. Brazil) Fruit [J]. Scientia Agricultura Sinica, 2014, 47(16): 3290-3299.
[15] DUAN Bi-Hui, LIU Xin-Wei, JIAO Wei, ZHAO Zhu-Qing, HU Cheng-Xiao. Alleviation of Boron Toxicity on Rape Seedlings by Selenium [J]. Scientia Agricultura Sinica, 2014, 47(11): 2126-2134.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!