作物学报 ›› 2009, Vol. 35 ›› Issue (3): 388-394.doi: 10.3724/SP.J.1006.2009.00388
段灿星1;程治军1;雷才林1;翟虎渠2;万建民1*
DUAN Can-Xing1;CHENG Zhi-Jun1;LEI Cai-Lin1;ZHAI Hu-Qu2;WAN Jian-Min1*
摘要:
灰飞虱是我国水稻生产上的重要害虫。Mudgo是一个高抗灰飞虱的籼稻品种,对灰飞虱具有强的排驱性和抗生性抗性。利用Mudgo/武育粳3号F2群体,构建了含有177个单株的F2群体的遗传连锁图谱。该连锁图包含104个SSR标记和3个Indel标记,覆盖整个水稻基因组1 409.9 cM,每两个标记之间的平均距离为13.2 cM。采用改进的苗期集团筛选法对177个F2:3家系进行了抗性鉴定,通过Windows QTL Cartographer 2.5进行复合区间作图分析,在第2、3、12染色体上分别检测到抗灰飞虱QTL Qsbph2b、Qsbph3d和Qsbph12a,分别位于标记RM5791~RM29、RM3199~RM5442和I12-17~RM333 1之间,单个LOD值分别为3.25、3.11和6.82,贡献率分别为17.3%、15.6%和35.8%,各QTL增强抗性的等位基因效应均来自Mudgo。其中Qsbph12a与标记RM3331和I12-17紧密连锁。结合表型鉴定的结果,Qsbph12a应为抗灰飞虱主效QTL,与该位点紧密连锁的标记可用于抗灰飞虱快速选择辅助育种。
| [1]Pu M-H(浦茂华). Preliminary study on Laodelphax striatellus Fallen (Homoptera: Delphacide) in South of Jiangsu province. Acta Entomol Sin (昆虫学报), 1963, 12(2): 117–135(in Chinese with English abstract) [2]Zhu S-X(朱绍先), Wu C-Z(邬楚中), Du J-Y(杜景佑). Rice Planthoppers and Their Control(稻飞虱及其防治). Shanghai: Shanghai Scientific and Technical Publishers, 1984. pp 116–139 (in Chinese) [3]Duan C X, Wan J M, Zhai H Q, Chen Q, Wang J K, Su N, Lei C L. Quantitative trait loci mapping of resistance to Laodelphax striatellus (Homoptera: Delphacidae) in rice using recombinant inbred lines. J Econ Entomol, 2007, 100: 1450–1455 [4]Heinrichs E A, Medrano F G, Rapusas H R. Genetic Evaluation for Insect Resistance in Rice. LosBanos, Philippines: International Rice Research Institute, 1985. pp 71–142 [5]Ramirez B C, Haenni A L. Molecular biology of tenuiviruse, a remarkable group of plant viruses. J Gen Virol, 1994, 75: 467–475 [6]Xie L H. Research on rice virus diseases in China. Trop Agric Res Ser, 1986, 19: 45–50 [7]Sun D-Z(孙黛珍), Jiang L(江玲), Zhang Y-X(张迎信), Cheng X-N(程遐年), Wang C-M(王春明), Zhai H-Q (翟虎渠), Wan J-M(万建民). Resistance to rice stripe virus in eight rice varieties. Chin J Rice Sci(中国水稻科学), 2006, 20 (2): 219–222(in Chinese with English abstract) [8]Sone S, Hattori Y, Tsuboi S, Otsu Y. Difference in susceptibility to imidacloprid of the populations of the small brown planthopper, Laodelphax striatellus Fallén. J Pestic Sci, 1995, 2 0: 541–543 [9]Endo S, Tsurumachi M. Insecticide resistance and insensitive acetylcholinesterase in small brown planthopper, Laodelphax striatellus. J Pestic Sci, 2000, 25: 395–397 [10]Endo S, Takahashi A, Tsurumachi M. Insecticide susceptibility of the small brown planthopper, Laodelphax striatellus Fallén (Homoptera: Delphacidae), collected from East Asia. Appl Entomol Zool, 2002, 37: 79–84 [11]Jeon Y H, Ahn S N, Choi H C, Hahn T R, Moon H P. Identification of a RAPD marker linked to a brown planthopper resistance gene in rice. Euphytica, 1999, 107: 23–28 [12]Wu A, Pang Y, Tang K. Homozygous transgenic rice lines expressing GNA with enhanced resistance to the rice sap-sucking pest Laodelphax striatellus. Plant Breed, 2002, 121: 93–95 [13]Qin W-S(秦文胜), Gao D-M(高东明), Chen S-X(陈声祥). Studies on techniques of rapid detecting rice stripe virus in Laodelphax striatellus. Zhejiang J Agric Sci(浙江农业学报), 1994, 6: 226–229(in Chinese with English abstract) [14]Duan C-X(段灿星), Zhang S-X(张世贤), Chen-Q(陈青), Cheng Z-J(程治军), Zhai H-Q(翟虎渠), Wan J-M(万建民). Evaluation of rice germplasm for resistance to small brown planthopper and analysis of resistance mechanism. Chin J Rice Sci (中国水稻科学), 2007, 21 (4): 425–430(in Chinese with English abstract) [15]International Rice Research Institute. Standard evaluation systems for rice. Manila, Philippines: International Rice Research Institute, 1988 [16]Chen X, Temnykh S, Xu Y, Cho Y G, McCouch S R. Development of a microsatellite framework map providing genome-wide coverage in rice (Oryza sativa L.). Theor Appl Genet, 1997, 97: 370–380 [17]Sanguinetti C J, Dias N E, Simpson A J G. Rapid silver staining and recover of PCR products separated on polyacrylamide gels. Biotechniques, 1994, 17: 915–919 [18]Temnykh S, Park W D, Ayres N, Cartinhour S, Hauck N, Lipovich L, Cho Y G, Ishii T, McCouch S R. Mapping and genome organization of microsatellite sequence in rice (Oryza sativa L.). Theor Appl Genet, 2000, 100: 697–712 [19]McCouch S R, Teytelman L, Xu Y. Development and mapping of 2240 new SSR markers for rice (Oryza sativa L.). DNA Res, 2002, 9:199–207 [20]Lincoln S, Daly M, lander E. Constructing Genetics Maps with MAPMARKER/EXP3.0. Whitehead Institute Technical Report, Cambridge, MA, 1992 [21]Kosambi D. The estimation of map distances from recombination values. Ann Eugen, 1994, 12: 172–175 [22]Basten C J, Weir B S, Zeng Z B. QTL Cartographer, Version 1.16. 2002. Department of Statistics, North Carolina State University, Raleigh, NC. http://www.statgen.ncsu.edu/qtlcart [23]McCouch S R, Cho Y G, Yano M, Paule E, Blinstrue M, Morishima H M, Kinosita T. Report on QTL nomenclature. Rice Genet Newsl, 1997, 14: 11–13 [24]Mackill, D J, Ni J J. Molecular mapping and marker-assisted selection for major-gene traits in rice. Rice Genet, Ⅳ, 2001, 137–151 [25]Athwal D S, Pathak M D, Bacalangco E H, Pura C D. Genetics of resistance to brown planthoppers and green leaf hoppers in Oryza sativa L. Crop Sci, 1971, 11: 747–750 [26]Tooyama T, Yamamoto T, Tsuji T. Chromosomal location of the brown.planthopper resistance gene Bph-1 revealed by RFLP mapping. Breed Sci, 1995, 45(suppl.2): 171(in Japanese) [27]Chen J-M(陈建明), Yu X-P(俞晓平), Lü Z-X(吕仲贤), Zheng X-S(郑许松), Xu H-X(徐红星), Cheng J-A(程家安), Liu G-J(刘光杰). Tolerance of rice varieties to whitebacked planthopper Sogatella furcifera and variation of nutritional components of rice plants. Chin J Appl Ecol(应用生态学报), 2003, 14(12): 2246–2250(in Chinese with English abstract) [28]Hirabayashi H, Ogawa T. RFLP mapping of Bph-1 (Brown planthopper resistance gene) in rice. Breed Sci, 1995, 45: 369–371 [29]Huang N, Parco, Mew T, Magpantay G, McCouch S, Guiderdoni E, Xu J, Subudi P, Angeles E R, Khush G S. RFLP mapping of isozymes, RAPD and QTLs for grain shape, brown planthopper resistance gene in a doubled haploid rice population. Mol Breed, 1997, 3: 105–113 [30]Kim S M, Sohn J K. Identification of a rice gene (Bph1) conferring resistance to brown planthopper (Nilaparvata lugens Stal) using STS markers. Mol Cells, 2005, 20: 30–34 [31]Sharma N, Ketipearachchi Y, Murata K, Torii A, Takumi S, Mori N. RFLP/AFLP mapping of a brown planthopper (Nilaparvata lugens St?l) resistance gene Bph1 in rice. Euphytica, 2003, 129: 109–117 [32]Murata K, Fujiwara M, Nakamura C, Mori N, Kaneda C. Mapping of brown planthopper resistance genes bph2 and Bph9 in rice. J Crop Sci Breed, 1998, 43: 4–7 [33]Ishii T, Brar D S, Multani D S, Khush G S. Molecular tagging of genes for brown planthopper resistance and earliness introgressed from Oryza australiensis into culivated rice, O. sativa. Genome, 1994, 37: 217–221 [34]Jena K K, Jeung J U, Lee J H, Choi H C, Brar D S. High-resolution mapping of a new brown planthopper (BPH) resistance gene, Bph18(t), and marker-assisted selection for BPH resistance in rice (Oryza sativa L.). Theor Appl Genet, 2006, 112: 288–297 [35]Su C-C(苏昌潮), Cheng X-N(程遐年), Zhai H-Q(翟虎渠), Wan J-M(万建民). Detection and analysis of QTLs for resistance to Brown Planthopper (Nilaparvata lugens St?l) in rice (Oryza sativa L.) using backcross inbred lines. Acta Genet Sin (遗传学报), 2002, 29(4): 332–339(in Chinese with English abstract) [36]Harushima Y, Yano M, Shomura A, Sato M, Shimano T, Kuboki Y, Yamamoto T, Lin S Y, Antonio B A, Parco A, Kajiya H, Huang N, Yamamoto K, Nagamura Y, Kurata N, Khush G S, Sasaki A. A High-density rice genetic linkage map with 2275 markers using a single F2 population. Genetics, 1998, 149: 479–494 [37]Soundararajan R P, Kadirvel P, Gunathilagaraj K, Maheswaran M. Mapping of quantitative trait loci associated with resistance to brown planthopper in rice by means of a doubled haploid population. Crop Sci, 2004, 44: 2214–2220 |
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