Scientia Agricultura Sinica ›› 2014, Vol. 47 ›› Issue (6): 1099-1110.doi: 10.3864/j.issn.0578-1752.2014.06.006

• PLANT PROTECTION • Previous Articles     Next Articles

Control Efficacy and Action Mechanism of Mineral Nutrition on Tobacco Bacterial Wilt

 ZHENG  Shi-Yan, DING  Wei, DU  Gen-Ping, YANG  Liang, LIU  Xiao-Jiao, ZHANG  Yong-Qiang   

  1. College of Plant Protection, Southwest University, Chongqing 400716
  • Received:2013-09-05 Online:2014-03-15 Published:2013-11-28

Abstract: 【Objective】 The objective of this study is to research the effect of four kinds of mineral nutrition (Ca, B, Mg and Mo) on tobacco bacterial wilt and defense enzyme activities, and discuss their mechanisms of action. Furthermore, from the perspective of control efficacy and physiological and biochemical regulation ways, finding out the crucial element related to control tobacco bacterial wilt closely.【Method】 A plot experiment was carried out repeatedly by means of greenhouse experiment combined with field test. Adding application of Ca, B, Mg and Mo nutrition for tobacco plant were individually with spraying. Subsequently, a comparison among control efficacies and defense enzymes activities of different treatments were carried out by investigating, detecting and analyzing the impact of different elements on occurrence of tobacco bacterial wilt, tobacco agronomical trait, direct inhibition and defense enzymes in tobacco plant.【Result】The greenhouse experiment results showed that, being on the basis of guaranteeing the basic nutrition, adding application of Ca, B, Mg and Mo all performed inhibition against tobacco bacterial wilt. However, the control efficacy of Mo treatment was significantly higher than others, followed by Ca nutrition, which were 64.79% and 57.67%, respectively. Besides, the areas under disease progress curve (AUDPC) of Mo and Ca treatments were significantly lower than others, which were 300.00, 244.44 (calculated with disease incidence) and 380.56, 352.78 (based on disease index) lower than control, respectively. Furthermore, there were direct inhibitions for Mo and Ca against Ralstonia solanacearum, the highest rate of which was 35.93% and 33.13% individually after treating 24 h. Additionally, Mo and Ca nutrition dramatically increased POD, CAT, SOD, PPO and PAL activities, and decreased MDA level in infected tobacco plant. Compared with the control treatment, which raised 3.11, 1.10, 0.82, 1.68 and 0.60 times, and 1.26, 0.73, 0.90, 1.00 and 0.32 times in turn, reduced 0.50 and 0.26 times, respectively. Moreover, the field experiments results showed that, supplying with Ca, B, Mg and Mo to tobacco plant, which were cultivated in tobacco-growing soil existing nutrition unbalance, tobacco bacterial wilt was controlled effectively. And the field control effects of Mo and Ca treatments were higher than any others, which were 49.46%-65.52%, 46.80%-57.40% (2011) and 45.28%-62.17%, 42.91%-62.57% (2012), respectively. What’s more, in terms of tobacco agronomical characteristics, Mo and Ca nutrition showed distinctly acceleration in the field, particularly plant height, width and area of maximum leaf and stem diameter.【Conclusion】The condition of tobacco nutrient level is closely related to its resistance. Replenishing tobacco with Mo and Ca nutrition regularly will benefit to enhance the defense ability of tobacco against bacterial wilt, and improve tobacco resistance to bacterial wilt. Besides, there is an obvious control effect against tobacco bacterial wilt. Furthermore, the above results would play an increasingly important role in the construction of nutrition-disease resistance model on plant diseases.

Key words: molybdenum , calcium , mineral nutrition , tobacco , bacterial wilt , resistance , control efficacy , defense enzymes

[1]Peeters N, Guidot A, Vailleau F, Valls M. Ralstonia solanacearum, a widespread bacterial plant pathogen in the post-genomic era. Molecular Plant Pathology, 2013, 14(6): 1-12.

[2]Álvarez B, Biosca E G, López M M.On the life of Ralstonia solanacearum, a destructive bacterial plant pathogen. Current Research, Technology and Education Topics in Applied Microbiology and Microbial Biotechnology, 2010, 1: 267-279.

[3]李林章, 谢从华, 柳俊. 茄科雷尔氏菌 (Ralstonia solanacearum) 分子生物学基础及其致病机制. 中国马铃薯, 2005, 19(5): 290-294.

Li L Z, Xie C H, Liu J. The molecular biology foundation and pathogenic mechanism of Solanaceae Ralstonia solanacearum. Chinese Potato, 2005, 19(5): 290-294. (in Chinese)

[4]Ghareeb H, Bozsó Z, Ott P G, Repenning C, Stahl F, Wydra K.Transcriptome of silicon-induced resistance against Ralstonia solanacearum in the silicon non-accumulator tomato implicates priming effect. Physiological and Molecular Plant Pathology, 2011, 75(3): 83-89.

[5]Seo S, Gomi K, Kaku H, Abe H, Seto H, Nakatsu S, Neya M, Kobayashi M, Nakaho K, Ichinose Y, Mitsuhara I, Ohashi Y. Identification of natural diterpenes that inhibit bacterial wilt disease in tobacco, tomato and Arabidopsis. Plant and Cell Physiology, 2012, 53(8): 1432-1444.

[6]Jiang J F, Li J G, Dong Y H. Effect of calcium nutrition on resistance of tomato against bacterial wilt induced by Ralstonia solanacearum. European Journal of Plant Pathology, 2013, 136: 547-555.

[7]Dannon E A, Wydra K. Interaction between silicon amendment, bacterial wilt development and phenotype of Ralstonia solanacearum in tomato genotypes. Physiological and Molecular Plant Pathology, 2004, 64(5): 233-243.

[8]Diogo R V C, Wydra K. Silicon-induced basal resistance in tomato against Ralstonia solanacearum is related to modification of pectic cell wall polysaccharide structure. Physiological and Molecular Plant Pathology, 2007, 70: 120-129.

[9]Wang L, Cai K, Chen Y, Wang G. Silicon-mediated tomato resistance against Ralstonia solanacearum is associated with modification of soil microbial community structure and activity. Biological Trace Element Research, 2013, 152: 275-283.

[10]Kiirika L M, Stahl F, Wydra K. Phenotypic and molecular characterization of resistance induction by single and combined application of chitosan and silicon in tomato against Ralstonia solanacearum. Physiological and Molecular Plant Pathology, 2013, 81: 1-12.

[11]Yamazaki H, Hoshina T. Calcium nutrition affects resistance of tomato seedlings to bacterial wilt. HortScience, 1995, 30(1): 91-93.

[12]Yamazaki H, Kikuchi S, Hoshina T, Kimura T. Effect of calcium concentration in nutrient solution before and after inoculation with Ralstonia solanacearum on resistance of tomato seedlings to bacterial wilt. Soil Science and Plant Nutrition, 1999, 45(4): 1009-1014.

[13]Yamazaki H, Kikuchi S, Hoshina T, Kimura T. Calcium uptake and resistance to bacterial wilt of mutually grafted tomato seedlings. Soil Science and Plant Nutrition, 2000, 46(2): 529-534.

[14]Yamazaki H, Kikuchi S, Hoshina T, Kimura T. Effect of calcium concentration in nutrient solution on development of bacterial wilt and population of its pathogen Ralstonia solanacearum in grafted tomato seedlings. Soil Science and Plant Nutrition, 2000, 46(2): 535-539.

[15]Yamazaki H. Relation between resistance to bacterial wilt and calcium nutrition in tomato seedlings. Japan Agricultural Research Quarterly, 2001, 35(3): 163-169.

[16]Norman D J, Chen J, Yuen J M F, Mangravita-Novo A, Byrned D, Walsh L. Control of bacterial wilt of geranium with phosphorous acid. Plant Disease, 2006, 90(6): 798-802.

[17]刘添毅, 黄一兰, 王雪仁, 林建麒. 烟区土壤改良技术措施研究. 中国烟草科学, 2006(3): 10-15.

Liu T Y, Huang Y L, Wang X R, Lin J L. Studies on techniques for soil improvement in Sanming tobacco planting area. Chinese Tobacco Science, 2006(3): 10-15. (in Chinese)

[18]刘勇, 陈学军, 李文正, 许文, 李梅云, 徐照丽, 卢秀萍, 李永平. 一种烟草青枯病抗性的苗期鉴定方法. 中国, 200910094174.8 [P]. 2009-08-05.

Liu Y, Chen X J, Li W Z, Xu W, Li M Y, Xu Z L, Lu X P, Li Y P. A seedling stage identification method of tobacco against bacterial wilt. China, 200910094174.8 [P]. 2009-08-05. (in Chinese)

[19]李鑫. 矿质元素调控烟草抗PVYN生理生化及分子机制研究[D]. 沈阳: 沈阳农业大学, 2009: 51-55.

Li X. The physiological, biochemical and molecular mechanism of mineral elements regulating tobacco resistant to PVYN [D]. Shenyang: Shenyang Agricultural University, 2009: 51-55. (in Chinese)

[20]李忠光, 李江鸿, 杜朝昆, 黄号栋, 龚明. 在单一提取系统中同时测定五种植物抗氧化酶. 云南师范大学学报, 2002, 22(6): 44-48.

Li Z G, Li J H, Du C K, Huang H D, Gong M. Simultaneous measurement of five antioxidant enzyme activities using a single extraction system. Journal of Yunnan Normal University, 2002, 22(6): 44-48. (in Chinese)

[21]高俊凤. 植物生理学实验指导. 北京: 高等教育出版社, 2006.

Gao J F. Experiment Guide of Plant Physiology. Beijing: Higher Education Press, 2006. (in Chinese)

[22]Garcia-Mina J M. Plant nutrition and defense mechanism: frontier knowledge//Srivastava A K. Advances in Citrus Nutrition. Soil Science, National Research Centre for Citrus, 2012: 1-12.

[23]Spann T M, Schunmann A W. Mineral nutrition contributes to plant disease and pest resistance. http: //edis.ifas.ufl.edu., 2010: 1-5.

[24]Kurabachew H, Stahl F, Wydra K. Global gene expression of rhizobacteria-silicon mediated induced systemic resistance in tomato (Solanum lycopersicum) against Ralstonia solanacearum. Physiological and Molecular Plant Pathology, 2013, 84: 44-52.

[25]Ayana G, Fininsa C, Ahmed S, Wydra K. Effects of soil amendment on bacterial wilt caused by Ralstonia solanacerum and tomato yields in Ethiopia. Journal of Plant Protection Research, 2011, 51(1): 72-76.

[26]H•马斯纳. 高等植物的矿质营养. 北京: 北京农业大学出版社, 1988.

Marsctlner H. Mineral Nutrition of Higher Plants. Beijing: Beijing Agricultural University Press, 1988. (in Chinese)

[27]刘菲. 核黄素激活烟草方位反应和诱导对两种土传病害的抗病性研究[D]. 泰安: 山东农业大学, 2009: 7.

Liu F. Riboflavin elicits defense responses in tobacco and induces protection against two soil-borne pathogens[D]. Taian: Shandong Agricultural University, 2009: 7. (in Chinese)

[28]萧浪涛, 王三根. 植物生理学实验技术. 北京: 中国农业出版社, 2005.

Xiao L T, Wang S G. Experimental Technology of Plant Physiology. Beijing: China Agriculture Press, 2005. (in Chinese)

[29]丁传雨, 乔焕英, 沈其荣, 冉炜, 陈巍. 生物有机肥对茄子青枯病的防治及其机理探讨. 中国农业科学, 2012, 45(2): 239-245.

Ding C Y, Qiao H Y, Shen Q R, Ran W, Chen W. Control effect and action mechanism research of bio-organic fertilizer on eggplant bacterial wilt. Scientia Agricultura Sinica, 2012, 45(2): 239-245. (in Chinese)

[30]徐根娣, 刘鹏, 任玲玲. 钼在植物体内生理功能的研究综述. 浙江师大学报: 自然科学版, 2001, 24(3): 292-297.

Xu G D, Liu P, Ren L L. A summing up of the biological action of molybdenum in plants. Journal of Zhejiang Normal University: Natural Science, 2001, 24(3): 292-297. (in Chinese)

[31]Kruse T, Gehl C, Geisler M, Lehrke M, Ringel P, Hallier S, Hänsch R, Mendel R R. Identification and biochemical characterization of molybdenum cofactor-binding proteins from Arabidopsis thaliana. The Journal of Biological Chemistry, 2010, 285(9): 6623-6635.

[32]Schwarz G, Mendel R R, Ribbe M W. Molybdenum cofactors, enzymes and pathways. Nature, 2009, 460(7257): 839-847.

[33]赵胜利. 钼素营养对烟草生理生化特性及产量产值的影响[D]. 合肥: 安徽农业大学, 2009.

Zhao S L. The influence of the Molybdenum nutrition upon the tobacco nutritive property physiology bio-chemical and production value yield[D]. Hefei: Anhui Agricultural University, 2009. (in Chinese)

[34]López-Lefebre L R, Rivero R M, García P C, Sánchez E, Ruiz J M, Romero L. Effect of calcium on mineral nutrient uptake and growth of tobacco. Journal of the Science of Food and Agriculture, 2001, 81(14): 1334-1338.

[35]雷广海. 烟草矿质营养相互关系研究[D]. 郑州: 河南农业大学, 2003.

Lei G H. Studies on mutual relations among mineral nutrients in tobacco[D]. Zhengzhou: Henan Agricultural University, 2003. (in Chinese)

[36]Ma W, Qi Z, Smigel A, Walker R K, Verma R, Berkowitz G A. Ca2+, cAMP, and transduction of non-self perception during plant immune responses. Proceedings of the National Academy of Sciences of the United States of America, 2009, 106(49): 20995-21000.
[1] ZHANG XiaoLi, TAO Wei, GAO GuoQing, CHEN Lei, GUO Hui, ZHANG Hua, TANG MaoYan, LIANG TianFeng. Effects of Direct Seeding Cultivation Method on Growth Stage, Lodging Resistance and Yield Benefit of Double-Cropping Early Rice [J]. Scientia Agricultura Sinica, 2023, 56(2): 249-263.
[2] LIU Jiao,LIU Chang,CHEN Jin,WANG MianZhi,XIONG WenGuang,ZENG ZhenLing. Distribution Characteristics of Prophage in Multidrug Resistant Escherichia coli as well as Its Induction and Isolation [J]. Scientia Agricultura Sinica, 2022, 55(7): 1469-1478.
[3] GUO ZeXi,SUN DaYun,QU JunJie,PAN FengYing,LIU LuLu,YIN Ling. The Role of Chalcone Synthase Gene in Grape Resistance to Gray Mold and Downy Mildew [J]. Scientia Agricultura Sinica, 2022, 55(6): 1139-1148.
[4] YAN LeLe,BU LuLu,NIU Liang,ZENG WenFang,LU ZhenHua,CUI GuoChao,MIAO YuLe,PAN Lei,WANG ZhiQiang. Widely Targeted Metabolomics Analysis of the Effects of Myzus persicae Feeding on Prunus persica Secondary Metabolites [J]. Scientia Agricultura Sinica, 2022, 55(6): 1149-1158.
[5] WANG Kai,ZHANG HaiLiang,DONG YiXin,CHEN ShaoKan,GUO Gang,LIU Lin,WANG YaChun. Definition and Genetic Parameters Estimation for Health Traits by Using on-Farm Management Data in Dairy Cattle [J]. Scientia Agricultura Sinica, 2022, 55(6): 1227-1240.
[6] ZHANG YaLing, GAO Qing, ZHAO Yuhan, LIU Rui, FU Zhongju, LI Xue, SUN Yujia, JIN XueHui. Evaluation of Rice Blast Resistance and Genetic Structure Analysis of Rice Germplasm in Heilongjiang Province [J]. Scientia Agricultura Sinica, 2022, 55(4): 625-640.
[7] WANG MengRui, LIU ShuMei, HOU LiXia, WANG ShiHui, LÜ HongJun, SU XiaoMei. Development of Artificial Inoculation Methodology for Evaluation of Resistance to Fusarium Crown and Root Rot and Screening of Resistance Sources in Tomato [J]. Scientia Agricultura Sinica, 2022, 55(4): 707-718.
[8] XIANG MiaoLian, WU Fan, LI ShuCheng, WANG YinBao, XIAO LiuHua, PENG WenWen, CHEN JinYin, CHEN Ming. Effects of Melatonin Treatment on Resistance to Black Spot and Postharvest Storage Quality of Pear Fruit [J]. Scientia Agricultura Sinica, 2022, 55(4): 785-795.
[9] WANG LÜYang,CUI LeiHong,FENG JiangYin,HONG QiuXia,YOU MeiJing,BAO HaoYu,HANG SuQin. Effects of CaSR and CCK-1R Mediated Soybean Protein Hydrolysate on Appetite Using Mouse [J]. Scientia Agricultura Sinica, 2022, 55(4): 807-815.
[10] HU ChaoYue, WANG FengTao, LANG XiaoWei, FENG Jing, LI JunKai, LIN RuiMing, YAO XiaoBo. Resistance Analyses on Wheat Stripe Rust Resistance Genes to the Predominant Races of Puccinia striiformis f. sp. tritici in China [J]. Scientia Agricultura Sinica, 2022, 55(3): 491-502.
[11] TANG ZiYun,HU JianXin,CHEN Jin,LU YiXing,KONG LingLi,DIAO Lu,ZHANG FaFu,XIONG WenGuang,ZENG ZhenLing. Relationship Between Biofilm Formation and Molecular Typing of Staphylococcus aureus from Animal Origin [J]. Scientia Agricultura Sinica, 2022, 55(3): 602-612.
[12] LI ZhiLing,LI XiangJu,CUI HaiLan,YU HaiYan,CHEN JingChao. Development and Application of ELISA Kit for Detection of EPSPS in Eleusine indica [J]. Scientia Agricultura Sinica, 2022, 55(24): 4851-4862.
[13] ZHANG Qi,DUAN Yu,SU Yue,JIANG QiQi,WANG ChunQing,BIN Yu,SONG Zhen. Construction and Application of Expression Vector Based on Citrus Leaf Blotch Virus [J]. Scientia Agricultura Sinica, 2022, 55(22): 4398-4407.
[14] DU JinXia,LI YiSha,LI MeiLin,CHEN WenHan,ZHANG MuQing. Evaluation of Resistance to Leaf Scald Disease in Different Sugarcane Genotypes [J]. Scientia Agricultura Sinica, 2022, 55(21): 4118-4130.
[15] FENG AiQing,WANG CongYing,ZHANG MeiYing,CHEN Bing,FENG JinQi,CHEN KaiLing,WANG WenJuan,YANG JianYuan,SU Jing,ZENG LieXian,CHEN Shen,ZHU XiaoYuan. Pathotype Analysis of Xanthomonas oryzae pv. oryzae in Main Rice Producing Regions of China and Establishment of Differential Hosts of Near-Isogenic Lines [J]. Scientia Agricultura Sinica, 2022, 55(21): 4175-4195.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!