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Acta Agron Sin ›› 2011, Vol. 37 ›› Issue (09): 1559-1568.doi: 10.3724/SP.J.1006.2011.01559

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

Development of Introgression Lines and Identification of QTLs for Resistance to Sheath Blight

GAO Xiao-Qing1,XIE Xue-Wen1,XU Mei-Rong1,WANG Lei1,SHI Ying-Yao3,GAO Yong-Min1,ZHU Ling-Hua1,ZHOU Yong-Li1,*,LI Zhi-Kang1,2   

  1. 1 Institute of Crop Sciences / National Key Facility for Crop Gene Resources and Genetic Improvement, Chinese Academy of Agricultural Sciences, Beijing 100081, China; 2 International Rice Research Institute, DAPO Box 7777, Metro Manila, Philippines; 3 Anhui Agricultural University, Hefei 230036, China
  • Received:2011-01-28 Revised:2011-04-27 Online:2011-09-12 Published:2011-06-28
  • Contact: 周永力, E-mail: zhouyl@caas.net.cn

Abstract: In this study, two random BC2F2 populations were developed by cross and backcross, in which two major hybrid restorer lines Shuhui 527 and Minghui 86 were used as recurrent parents respectively, and Jiangxisimiao used as donor. The bulks of the BC2F2 populations were inoculated with Rhizoctonia solani to screen the lines resistant to sheath blight, and 49 resistant introgression lines (ILs) were selected. The genotypes of ILs were analyzed with evenly distributed polymorphic SSR markers, and a total of 12 significant loci were identified by χ2 test analysis. Among them, two allelic frequency-deviation loci were located in the same or near regions identified in the previous studies. In the field test without artificial inoculation, there was no significant difference between all the agronomic traits investigated in the selected ILs and their recurrent parents. Under heavily diseased conditions, six ILs with Shuhui 527 background and two ILs with Minghui 86 background showed similar agronomic traits and significantly higher resistance to sheath blight than their recurrent parents at two experimental sites, which can be served as immediate sources of sheath blight resistance for hybrid rice breeding and directly used in hybrid rice production.

Key words: Rice, Backcross introgression lines, Sheath blight, QTL

[1]Meng Q-Z(孟庆忠), Liu Z-H(刘志恒), Wang H-Y(王鹤影), Zhang S-S(张书绅), Wei S-H(魏松红). Research progress in rice sheath blight. J Shenyang Agric Univ (沈阳农业大学学报), 2001, 32(5): 376-381 (in Chinese with English abstract)
[2]Tang J-B(唐家斌), Ma B-T(马炳田), Wang L-X(王玲霞), Li P(李平), Zheng A-P(郑爱萍), Chen H(陈红). Biological control of rice sheath blight with Trichoderma and Thichoderma-like. Chin J Rice Sci (中国水稻科学), 2002, 16(1): 63-66 (in Chinese with English abstract)
[3]Chang T T. The present status of breeding for resistance to rice blast and sheath blight in Taiwan. Int Rice Res Newsl, 1986, 11(2): 1-7
[4]Sha X Y, Zhu L H. Resistance of some rice varieties to sheath blight (ShB). Int Rice Res Newsl, 1989, 15: 7-8
[5]Marchetti M A. Quantification of the relationship between sheath blight severity and yield loss in rice. Plant Dis, 1991, 75: 773-775
[6]Zuo S-M(左示敏), Zhang Y-F(张亚芳), Chen Z-X(陈宗祥), Chen X-J(陈夕军), Pan X-B(潘学彪). Current progress on genetics and breeding in resistance to rice sheath blight. Scientia Sinica Vitae (中国科学: 生命科学), 2010, 40(11): 1014-1023 (in Chinese)
[7]Zeng Y-X(曾宇翔), Li X-M(李西明), Ma L-Y(马良勇), Ji Z-J(季芝娟), Yang C-D(杨长登). Research progress on mapping of gene conferring resistance to sheath blight and exploitation of resistance resources in rice. Chin J Rice Sci (中国水稻科学), 2010, 24(5): 544-550 (in Chinese with English abstract)
[8]Li Z-K(黎志康). Strategies for molecular rice breeding in China. Mol Plant Breed (分子植物育种), 2005, 3(5): 603-608 (in Chinese with English abstract)
[9]Pan X-B(潘学彪), Chen Z-X(陈宗祥), Xu J-Y(徐敬友), Tong Y-H(童蕴慧), Wang Z-B(王子斌), Pan X-Y(潘兴元). The effects of different methods of inoculation and investigation on genetic research of resistance to rice sheath blight. J Jiangsu Agric Coll (江苏农学院学报), 1997, 18(3): 27-32 (in Chinese with English abstract)
[10]Schlotterer C. Hitchhiking mapping-functional genomics from the population genetics perspective. Trends Genet, 2003, 19: 32-38
[11]Li Z K, Fu B Y, Gao Y M, Xu J L, Ali J, Lafitte H R, Jiang Y Z, Rey J D, Vijayakumar C H, Maghirange R, Zheng T Q, Zhu L H. Genome-wide introgression lines and their use in genetic and molecular dissection of complex phenotypes in rice (Oryza sativa L.). Plant Mol Biol, 2005, 59: 33-52
[12]Zheng T-Q(郑天清), Xu J-L(徐建龙), Fu B-Y(傅彬英), Gao Y-M(高用明), Veruka S, Laffitte R, Zhai H-Q(翟虎渠), Wan J-M(万建民), Zhu L-H(朱苓华), Li Z-K(黎志康). Preliminary identification of genetic overlaps between sheath blight resistance and drought tolerance in the introgression lines from directional selection. Acta Agron Sin (作物学报), 2007, 33(8): 1380-1384 (in Chinese with English abstract)
[13]Li Z K, Pingson S R M, Marchetti M A, Stansel J W, Park W D. Characterization of quantitative trait loci (QTLs) in cultivated rice contributing to field resistance to sheath blight (Rhizoctonia solam). Theor Appl Genet, 1995, 91: 382-388
[14]Pan X-B(潘学彪), Zou J-H(邹军煌), Chen Z-X(陈宗祥), Lu J-F(陆驹飞), Yu H-X(于恒秀), Li H-T(李海涛), Wang Z-B(王子斌), Rush M C, Zhu L-H(朱立煌). Tagging major quantitative trait loci for sheath blight resistance in a rice variety, Jasmine 85. Chin Sci Bull (科学通报), 1999, 44(15): 1629-1635 (in Chinese with English abstract)
[15]Zou J H, Pan X B, Chen Z X, Xu J Y, Lu J F, Zhai W X, Zhu L H. Mapping quantitative trait loci controlling sheath blight resistance in two rice cultivars (Oryza sativa L.). Theor Appl Genet, 2000, 101: 569-573
[16]Kunihiro Y(国广泰史), Qian Q(钱前), Sato H(佐藤宏之), Teng S(滕胜), Zeng D-L(曾大力), Fujimoto H(藤本宽), Zhu L-H(朱立煌). QTL analysis of sheath blight resistance in rice (Oryza sativa L.). Acta Genet Sin (遗传学报), 2002, 29(1): 50-55 (in Chinese with English abstract)
[17]Han Y-P(韩月澎), Xing Y-Z(邢永忠), Chen Z-X(陈宗祥), Gu S-L(顾世梁), Pan X-B(潘学彪), Chen X-L(陈秀兰), Zhang Q-F(张启发). Mapping QTLs for horizontal resistance to sheath blight in an elite rice restorer line, Minghui 63. Acta Genet Sin (遗传学报), 2002, 29(7): 565-570 (in Chinese with English abstract)
[18]Sato H, Ideta O, Ando I, Kunihiro Y, Hirabayashi H, Iwano M, Miyasaka A, Nemoto H, Imbe T. Mapping QTLs for sheath blight resistance in the rice line WSS2. Breed Sci, 2004, 54: 265-271
[19]Pinson S R M, Capdevielle F M, Oard J H. Confirming QTLs and finding additional loci conditioning sheath blight resistance in rice using recombinant inbred lines. Crop Sci, 2005, 45: 503-510
[20]Xie X-W(谢学文), Xu M-R(许美容), Zang J-P(臧金萍), Sun Y(孙勇), Zhu L-H(朱苓华), Xu J-L(徐建龙), Zhou Y-L(周永力), Li Z-K(黎志康). Genetic background and environmental effects on QTLs for sheath blight resistance revealed by reciprocal introgression lines in rice. Acta Agron Sin (作物学报), 2008, 34(11): 1885-1893 (in Chinese with English abstract)
[21]Li F(李芳), Cheng L-R(程立锐), Xu M-R(许美容), Zhou Z(周政), Zhang F(张帆), Sun Y(孙勇), Zhou Y-L(周永力), Zhu L-H(朱苓华), Xu J-L(徐建龙), Li Z-K(黎志康). QTL mining for sheath blight resistance using the backcross selected introgression lines for grain quality in rice. Acta Agron Sin (作物学报), 2009, 35(9): 1729-1737 (in Chinese with English abstract)
[22]Liu G, Jia Y, Correa-Victoria F J, Prado G A, Yeater K M, McClung A, Correll J C. Mapping quantitative trait loci responsible for resistance to sheath blight in rice. Phytopathology, 2009, 99: 1078-1084
[23]Sharma A, McClung A M, Pinson S R M, Kepiro J L, Shank A R, Tabien R E, Fjellstrom R G. Genetic mapping of sheath blight resistance QTLs within tropical japonica rice cultivars. Crop Sci, 2009, 49: 256-264
[24]Channamallikarjuna V, Sonah H, Prasad M, Rao G J H, Chand S, Upreti H C, Singh N K, Sharma T R. Identification of major quantitative trait loci qSBR11-1 for sheath blight resistance in rice. Mol Breed, 2010, 25: 155-166
[25]Temnykh S, Declerck G, Lukashova A, Lipovich L, Cartinhour S, McCouch S. Computational and experimental analysis of microsatellites in rice (Oryza sativa L.): frequency, length variation, transposon associations, and genetic marker potential. Genome Res, 2001, 11: 1441-1452
[26]Kurata N, Nagamura Y, Yamamoto K, Harushima Y, Sue N, Wu J, Antonio B A, Shomura A, Shimizu T, Lin S Y, Inoue T, Fukuda A, Shimano T, Kuboki Y, Toyama T, Miyamoto Y, Kirihara K, Hayasaka K, Miyao A, Monna L, Zhong H S, Tamura Y, Wang Z X, Momma T, Umehara Y, Yano M, Sasaki T, Minobe Y A. 300 kilobase interval genetic map of rice including 883 expressed sequences. Nat Genet, 1994, 8: 365-372
[27]Ware D, Jaiswal P, Ni J, Pan X, Chang K, Clark K, Teytelman L, Schmidt S, Zhao W, Cartinhour S, McCouch S, Stein L. Gramene: a resource for comparative grass genomics. Nucl Acid Res, 2002, 30: 103-105
[28]Ali A J, Xu J L, Ismail A M, Vijakumar C H M, Gao Y M, Domingo J, Maghirang R, Yu S B, Gregorio G, Yangghihara S, Cohen M, Caren B, Mackill D, Li Z K. Hidden diversity for abiotic and biotic stress tolerances in the primary gene pool of rice revealed by a large backcross breeding program. Field Crops Res, 2006, 97: 66-76
[29]Zhang F(张帆), Hao X-B(郝宪彬), Gao Y-M(高用明), Hua Z-T(华泽田), Ma X-F(马秀芳), Chen W-F(陈温福), Xu Z-J(徐正进), Zhu L-H(朱苓华), Li Z-K(黎志康). Improving seedling cold tolerance of japonica rice by using the “Hidden Diversity” in indica rice germplasm in a backcross breeding program. Acta Agron Sin (作物学报), 2007, 33(10): 1618-1624 (in Chinese with English abstract)
[30]Lafitte H R, Li Z K, Vijayakumar C H M, Gao Y M, Shi Y, Xu J L, Fu B Y, Yu S B, Ali A J, Domingo J, Maghirang R Torres R, Mackill D. Improvement of rice drought tolerance through backcross breeding: evaluation of donors and results from drought nurseries. Field Crops Res, 2006, 97: 77-86
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