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Acta Agron Sin ›› 2014, Vol. 40 ›› Issue (09): 1521-1530.doi: 10.3724/SP.J.1006.2014.01521

• CROP GENETICS & BREEDING·GERMPLASM RESOURCES·MOLECULAR GENETICS •     Next Articles

An Evaluation System for Rice Black-Streaked Dwarf Virus Disease and Screening for Resistant Rice Germplasm

WANG Bao-Xiang1,HU Jin-Long2,SUN Zhi-Guang2,SONG Zhao-Qiang2,LU Bai-Guan1,ZHOU Zhen-Ling1,FAN Ji-Wei1,QIN De-Rong1,LIU Yu-Qiang2,JIANG Ling2,XU Da-Yong1,*,WAN Jian-Min2,3,*   

  1. 1 Institute of Lianyungang Agricultural Science of Xuhuai Area, Lianyungang 222006, China; 2 State Key Laboratory of Crop Genetics and Germplasm Enhancement / Nanjing Agricultural University, Nanjing 210095, China; 3 Institute of Crop Science, Chinese Academy of Agricultural Sciences, Beijing 100081, China
  • Received:2014-02-19 Revised:2014-06-16 Online:2014-09-12 Published:2014-07-10
  • Contact: 万建民, E-mail: wanjm@njau.edu.cn, Tel: 025-84396516; 徐大勇, E-mail: xudayong3030@sina.com, Tel: 0518-85589316

Abstract:

Rice black-streaked dwarf virus disease (RBSDVD) is one of the most serious viral diseases. The absence of efficient resistance evaluation system for RBSDVD restricts the excavation of the resistance resource, thereby the resistance breeding and basal researches are limited. Here, we proposed that the appropriate density of small brown planthopper (SBPH) should be 8 million ha-1 and the rate of RBSDV-carrying SBPH should be over 5% for RBSDVD evaluation in field condition. Further, we optimized the artificial inoculation evaluation system including circulative period, number of SBPH per plant, infestation time and age of SBPH. We evaluated 1240 varieties from 21 countries for RBSDV resistance by natural inoculation in 2010, 34 cultivars had the disease incidence less than 10%. The 34 cultivars were further evaluated by natural inoculation in three different locations in 2011 and 2012, respectively. Finally, only three varieties, Kanyakumari 29, Madurai 25, and Vietnam 160, which all came from Southeast Asia, had the consistent disease incidence less than 10% in different locations and years. To verify the resistance of the three varieties against RBSDVD, we carried out the interval sowing inoculation experiment in the three different locations in 2012. In the interval sowing experiment, the disease incidence of Kanyakumari 29 was less than 12%, whereas Madurai 25 and Vietnam 160 less than 9%. In addition, in the artificial field inoculation and artificial room inoculation experiments, the disease incidence of the three varieties was less than 9%. The above natural and artificial inoculation experiments showed that Kanyakumari 29, Madurai 25, and Vietnam 160 performed stable and high RBSDVD resistance. Taken together, the RBSDVD evaluation system combining field with artificial infestation identifications used in this study is accurate and reliable. This system could be used to widely screen RBSDVD resistance resources. The construction of RBSDVD evaluation system and the RBSDVD resistance resources identified in this study will provide the useful tools and materials for the identification of RBSDVD resistance gene(s) and development of RBSDVD resistance varieties.

Key words: Rice (Oryza sativa L.), Rice black-streaked dwarf virus, Resistance identification

[1]Milne R G, Lovisolo O. Maize rough dwarf and related viruses. Adv Virus Res, 1977, 21: 267–341



[2]Azuhata F, Uyeda I, Kimura I, Shikata E. Close similarity between genome structures of rice black-streaked dwarf and maize rough dwarf viruses. J Gen Virol, 1993, 74: 1227–1232



[3]李德葆, 王拱辰, 盛方镜. 浙江省水稻病毒病的发生规律和防治. 植物病理学报, 1979, 9(2): 73–87



Li D B, Wang G C, Sheng F J. Epidemiological study on rice virus disease and their control in Zhenjiang Province. Acta Phytopathol Sin, 1979, 9(2): 73–87 (in Chinese with English abstract)



[4]Heng M Z, Yang J, Chen J P, Zhang H M, Yang J, Chen J P, Adams M J. A black-streaked dwarf disease on rice in China is caused by a novel fiji virus. Arch Virol, 2008, 153: 1893–1898



[5]Zhang H M, Chen J P, Lei J L, Adams M J. Sequence analysis shows that a dwarfing disease on rice, wheat and maize in China is caused by rice black-steaked dwarf virus. Eur J Plant Pathol, 2001, 107: 563–567



[6]Wang H D, Chen J P, Wang A G, Jiang X H, Adams M J. Studies on the epidemiology and yield losses from rice black-streaked dwarf disease in a recent epidemic in Zhejiang Province, China. Plant Pathol, 2009, 58: 815–825



[7]周彤, 王英, 吴丽娟, 范永坚, 周益军. 水稻品种抗黑条矮缩病人工接种鉴定方法. 植物保护学报, 2011, 38: 301–305



Zhou T, Wang Y, Wu L J, Fan Y J, Zhou Y J. Method of artificial inoculation identification of rice cultivar resistance to rice black-streaked dwarf. Acta Phytophyl Sin, 2011, 38: 301–305 (in Chinese with English abstract)



[8]王宝祥, 江玲, 陈亮明, 卢百关, 王琦, 黎光泉, 樊继伟, 程遐年, 翟虎渠, 徐大勇, 万建民. 水稻黑条矮缩病抗性资源的筛选和抗性QTL的定位. 作物学报, 2010, 36: 1258–1264



Wang B X, Jiang L, Chen L M, Lu B G, Wang Q, Le Q T, Fan J W, Cheng X N, Zhai H Q, Xu D Y, Wan J M. The screening of the rice resources against rice black-streaked dwarf virus and mapping of resistant QTL. Acta Agron Sin, 2010, 36: 1258–1264 (in Chinese with English abstract)



[9]潘存红, 李爱宏, 陈宗祥, 吴林波, 戴正元, 张洪熙, 黄年生, 陈夕军, 张亚芳, 左示敏, 潘学彪. 水稻黑条矮缩病抗性QTL分析. 作物学报, 2009, 35: 2213–2217



Pan C H, Li A H, Chen Z X, Wu L B, Dai Z Y, Zhang H X, Huang N S, Chen X J, Zhang Y F, Zuo S M, Pan X B. Detection of QTL for resistance to rice black-streaked dwarf viral disease. Acta Agron Sin, 2009, 35: 2213–2217 (in Chinese with English abstract)



[10]Li A H, Pan C H, Wu L B, Dai Z Y, Zuo S M, Xiao N, Yu L, Li Y H, Zhang X X, Xue W X, Zhang H X, Pan X B. Identification and fine mapping of qRBSDV-6MH, a major QTL for resistance to rice black-streaked dwarf virus disease. Mol Breed, 2013, 32: 1–13



[11]王英. 水稻对黑条矮缩病的抗性遗传分析及基因定位. 南京农业大学硕士学位论文, 江苏南京, 2011



Wang Y. Genetic Analysis and Molecular Mapping of QTL for Rice Black-Streaked Disease Resistance in Rice. MS Thesis of Nanjing Agricultural University, Jiangsu, China, 2011 (in Chinese with English abstract)



[12]周彤, 杜琳琳, 范永坚, 周益军. 水稻黑条矮缩病毒RT-LAMP快速检测方法的建立. 中国农业科学, 2012, 45: 1285–1292



Zhou T, Du L L, Fan Y J, Zhou Y J. Development of a RT-LAMP assay for rapid detection of rice black-streaked dwarf virus. Sci Agric Sin, 2012, 45: 1285–1292 (in Chinese with English abstract)



[13]周彤, 王磊, 程兆榜, 范永坚, 周益军. 主栽品种镇稻88对水稻条纹叶枯病的抗性特征及其遗传研究. 中国农业科学, 2009, 42: 103–109



Zhou T, Wang L, Cheng Z B, Fan Y J, Zhou Y J. Mechanism and inheritance of resistance to rice stripe disease in the japonica rice cultivar Zhendao 88. Sci Agric Sin, 2009, 42: 103–109 (in Chinese with English abstract)



[14]孙黛珍, 江 玲, 张迎信, 程遐年, 王春明, 翟虎渠, 万建民. 8个水稻品种的条纹叶枯病抗性特征. 中国水稻科学, 2006, 20: 219–222



Sun D Z, Jiang L, Zhang Y X, Cheng X N, Wang C M, Zhai H Q, Wan J M. Resistance to rice stripe in eight rice varieties. Chin J Ric Sci, 2006, 20: 219–222 (in Chinese with English abstract)



[15]Hibino H. Biology and epidemiology of rice viruses. Annu Rev Phytopathol, 1996, 34: 249–274



[16]Yamaguchi T, Yasuo S, Ishi M. Studies on rice stripe disease: III. Study on varietal resistance to stripe disease of rice. Vent Agric Exp Station, 1965, 8: 109–160



[17]Washio O, Ezuka A, Toriyama K, Sakurai Y. Studies on the breeding of rice varieties resistant to stripe disease: II. Genetic study on resistance to stripe disease in Japanese upland rice. Jpn J Breed, 1968, 18: 96–101



[18]Washio O, Ezuka A, Toriyama K, Sakurai Y. Studies on the breeding of rice varieties resistant to stripe disease: III. Genetic studies on resistance to stripe disease in foreign varieties. Jpn J Breed, 1968, 18: 167–172



[19]Washio O, Ezuka A, Toriyama K, Sakurai Y. Testing method for genetics and breeding for resistance to rice stripe disease. Bull Chugoku Agric Exp Station Ser A, 1968, 16: 39–197



[20]Liu Y, Su C, Jiang L, He J, Wu H, Peng C, Wan J. The distribution and identification of brown planthopper resistance genes in rice. Hereditas, 2009, 146: 67–73



[21]徐建龙, 王汉荣, 林怡滋, 奚永安. 水稻细菌性条斑病和白叶枯病抗性遗传研究. 遗传学报, 1997, 24: 330–335



Xu J L, Wang H R, Lin Y Z, Xi Y A. Study on the inheritance of the resistance of rice to bacterial leaf streak and bacterial leaf blight. Acta Genet Sin, 1997, 24: 330–335 (in Chinese with English abstract)

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