Acta Agron Sin ›› 2009, Vol. 35 ›› Issue (9): 1729-1737.doi: 10.3724/SP.J.1006.2009.01729
• RESEARCH ACTIVITIES • Previous Articles Next Articles
LI Fang1,CHENG Li-Rui1,XU Mei-Rong1,ZHOU Zheng1,ZHANG Fan1,SUN Yong1,ZHOU Yong-Li1,ZHU Ling-Hua1,XU Jian-LOng1*,LI Zhi-Kang1,2
[1] McKenzie K S, Rush M C, Groth D E. Registration of two disease-resistant germplasm lines of rice. Crop Sci, 1986, 26: 839-840[2] Marchetti M A, Bollich C N. Quantification of the relationship between sheath blight severity and yield loss in rice. Plant Dis, 1991, 75: 773-775[3] Toriyama K. Breeding for resistance to major rice diseases in Japan. Los Baños, Philippines: IRRI, 1972. 253-281[4] Dasgupta M K. Rice sheath blight: the challenge continues. In: Singh U S, Mukhopadhyay A N, Kumar J, Chaube H S, eds. Plant Diseases of International Importance Vol I. Diseases of Cereals and Pulses. Prentice Hall, Englewood Cliff, New Jersey. 1992[5] Rush M C, Lindberg G D. Rice disease research. Rice J, 1996, 77: 49-52[6] Xie Q J, Rush M C, Cao J. Somaclonal variation for disease resistance in rice (Oryza sativa L.). In: Grayson B T, Green M B, Copping L G, eds. Pest Management in Rice. New York: Elsevier Applied Science, 1990. pp 491-509[7] Chang T T. The present status of breeding for resistance to rice blast and sheath blight in Taiwan. Int Rice Res Newsl, 1986, 11: 1-7[8] Che K P, Zhan Q C, Xing Q H, Wang Z P, Jin D M, He D J, Wang B . Tagging and mapping of rice sheath blight resistant gene. Theor Appl Genet, 2003, 106: 293-297 [9] 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 K(藤本宽), Zhu L-H(朱立煌).QTL analysis of sheath blight resistance in rice. Acta Genet Sin (遗传学报), 2002, 29(1): 50-55 (in Chinese with English abstract)[10]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): 622-626 (in Chinese with English abstract)[11]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). Mapping major-QTL for resistance to sheath blight in rice, Jamine 85. Chin Sci Bull (科学通报), 1999, 44(15): 1629-1635(in Chinese)[12]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.[13]Sato H, Ideta O, Audo 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[14]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: 569-575[15]Li Z K, Pinson S R M, Marchetti M A, Stansel J W, Park W D. Characterization of quantitative trait loci (QTLs) in cultivated rice controlling to field resistance to sheath blight (Rhizoctonia solani). Theor Appl Genet, 1995, 91: 382-388[16]Yin Y-J(殷跃军), Zuo S-M(左示敏), Wang H(王辉), Chen Z-X(陈宗祥), Ma Y-Y(马玉银), Zhang Y-F(张亚芳), Gu S-L(顾世梁), Pan X-B(潘学彪). Pyramiding effects of three quantitative trait loci for resistance to sheath blight using near-isogenic lines of rice. Chin J Rice Sci (中国水稻科学), 2008, 22(4): 340-346 (in Chinese with English abstract)[17]Zuo S-M(左示敏), Yin Y-J(殷跃军), Zhang L(张丽), Zhang Y-F(张亚芳), Chen Z-X(陈宗祥), Pan X-B(潘学彪). Breeding value and further mapping of a QTL qsB-11 conferring the rice sheath blight resistance. Chin J Rice Sci (中国水稻科学), 2007, 21(2): 136-142(in Chinese with English abstract)[18]Tanksley S D, Nelson J C. Advanced backcross QTL analysis: a method for the simultaneous discovery and transfer of valuable QTLs from unadapted germplasm into elite breeding lines. Theor Appl Genet, 1996, 92: 191-203 [19]Zhao X Q, Xu J L, Zhao M, Lafitte R, Zhu L H, Fu B Y, Gao Y M, Li Z K. QTLs affecting morph-physiological traits related to drought tolerance detected in overlapping introgression lines of rice (Oryza sativa L.). Plant Sci, 2008, 174: 618-625[20]Xu J L, Lafitte H R, Gao Y M, Fu B Y, Torres R, Li Z K. QTLs for drought escape and tolerance identified in a set of random introgression lines of rice. Theor Appl Genet, 2005, 111: 1642-1650[21]Zhang X, Zhou S X, Fu Y C, Su Z, Wang X K, Sun C Q. Identification of a drought tolerant introgression line derived from Dongxiang common wild rice (O. rufipogon Griff.). Plant Mol Biol, 2006, 62: 247-259[22]Arif M. Moleuclar Mapping of Genes/QTLs Affecting Resistance to Xanthomonas Oryza pv. oryza and Grain Quality Traits in Rice (Oryza sativa L.). PhD Dissertation of University of Philippines, Los Baños, Philippines. 2002[23]Chen Z-X(陈宗祥), Zou J-H(邹军煌), Han Y-P(韩月鹏), Xu J-Y(徐敬友), Tong Y-H(童蕴慧), Yu H-X(于恒秀), Zhang Y-F(张亚芳), Pan X-B(潘学彪). An innovated method for research on inheritance of resistance to rice sheath blight and its verification. Chin J Rice Sci (中国水稻科学), 2002, 16(1): 74-76 (in Chinese with English abstract)[24]Rush M C, Hoff B J, Mcllrath W O. A uniform disease rating system for rice disease in the United States. Proc 16th Rice Tech Working Group, Lake Charles, 1976. p 64[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: 1446-1448[26]SAS Institute. SAS/STAT User’s Guide. Cary: SAS Institute, 1996[27]Zang J P, Sun Y, Wang Y, Yang J, Li F, Zhou Y L, Zhu L H, Reys J, Fotokian M, Xu J L, Li Z K . Dissection of genetic overlap of salt tolerance QTLs at the seeding and tillering stages using backcross introgressive lines in rice. Sci China (Ser C·Life Sci), 2008, 51(7): 583-591[28]Chevin L M, Hospital F. Selective sweep at a quantitative trait locus in the presence of background genetic variation. Genetics, 2008, 180: 1645-1660[29]Ungerer M C, Linder C R, Rieseberg L H. Effects of genetic background on response to selection in experimental populations of Arabidopsis thaliana. Genetics, 2003, 163: 277-286[30]Xie X-W(谢学文), Xu M-R(许美容), Zang J-P(藏金萍), 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 environment effects on expression of QTL for sheath blight resistance in reciprocal introgression lines of rice. Acta Agron Sin (作物学报), 2008, 34(11): 1885-1893 (in Chinese with English abstract)[31]Yuan X-P(袁筱萍), Wei X-H(魏兴华), Yu H-Y (余汉勇), Wang Y-P(王一平), Tang S-X(汤圣祥). Effects of different cultivars and relatives factors on sheath blight resistance of rice. Acta Agron Sin (作物学报), 2004, 30(4): 739-744 (in Chinese with English abstract)[32]Rush M C, Pan X B, Sha X Y. Development of sheath blight resistance in rice. In: 85thAnnu Res Rep, Rice Research Station, LSU Agricultural Center, Crowley, LA, USA, 1995, 85: 380-393[33]Han Y P, Xing Y Z, Gu S L, Chen Z X, Pan X B, Chen X L. Effect of morphological traits on sheath blight resistance in rice. Acta Bot Sin, 2003, 45: 825-831[34]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 Acids Res, 2002, 30: 103-105[35]Martin T J, Ellingboe A H. Differences between compatible parasite/host genotypes involving the Pm4 locus of wheat and the corresponding genes in Erysiphe graminis f. sp. tritici. Phytopathology, 1976, 66: 1435-1438[36]Royer M H, Nelson R R, MacKenzie D R, Diehle D A. Partial resistance of near-isogenic wheat lines compatible with Erysiphe graminis f. sp. tritici. Phytopathology, 1984,69: 405-409[37]Li Z K, Luo L J, Mei H W, Paterson A H, Zhao X H, Zhong D B, Wang Y P, Yu X Q, Zhu L, Tabien R, Stansel J W, Ying C S. A ‘defeated’ rice resistance gene acts as a QTL against a virulent strain of Xanthomonas oryzae pv. oryzae. Theor Appl Genet, 1999, 261: 58-63[38]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)[39]Xu J-L(徐建龙), Gao Y-M(高用明), Fu B-Y(傅彬英), Li Z-K(黎志康). Identification and screening of favorable genes from rice germplasm in backcross introgression populations. Mol Plant Breed (分子植物育种), 2005, 3(5): 619-628 (in Chinese with English abstract)[40]Li Z K, Fu B Y, Gao Y M, Xu J L, Ali J, Lafitte H R, Jiang Y Z, Rey J, Dominggo, Vijayakumar C H M, Maghirang R, Zheng T Q, Zhu L H.Genome-wide introgression lines and a forward genetics strategy for functional genomic research of complex phenotypes in rice. Plant Mol Biol, 2005, 59: 33-52[41]Ali A J, Xu J L, Ismail A M, Fu B Y, Vijaycumar C H M, Gao Y M, Domingo J, Maghirang R, Yu S B, Gregorio G, Yanaghihara S, Cohen M, Carmen 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[42]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, Lafitte 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)Kang L(康乐), Li H(李宏), Sun Y(孙勇), Lu D-C(卢德城), Zhang F(张帆), Huang D-Q(黄道强), Xu J-L(徐建龙), Wang Z-D(王志东), Zhu L-H(朱苓华), Gao Y-M(高用明), Fu B-Y(傅彬英), Li K-H(李康活), Zhou Y-L(周永力), Zhou S-C(周少川), Li Z-K(黎志康). Genetic dissection of yield potential in rice (Oryza sativa L.) using introgression lines. Acta Agron Sin (作物学报), 2008, 34(9): 1500-1509 (in Chinese with English abstract) |
[1] | HU Wen-Jing, LI Dong-Sheng, YI Xin, ZHANG Chun-Mei, ZHANG Yong. Molecular mapping and validation of quantitative trait loci for spike-related traits and plant height in wheat [J]. Acta Agronomica Sinica, 2022, 48(6): 1346-1356. |
[2] | YU Chun-Miao, ZHANG Yong, WANG Hao-Rang, YANG Xing-Yong, DONG Quan-Zhong, XUE Hong, ZHANG Ming-Ming, LI Wei-Wei, WANG Lei, HU Kai-Feng, GU Yong-Zhe, QIU Li-Juan. Construction of a high density genetic map between cultivated and semi-wild soybeans and identification of QTLs for plant height [J]. Acta Agronomica Sinica, 2022, 48(5): 1091-1102. |
[3] | WANG Ze, ZHOU Qin-Yang, LIU Cong, MU Yue, GUO Wei, DING Yan-Feng, NINOMIYA Seishi. Estimation and evaluation of paddy rice canopy characteristics based on images from UAV and ground camera [J]. Acta Agronomica Sinica, 2022, 48(5): 1248-1261. |
[4] | FU Mei-Yu, XIONG Hong-Chun, ZHOU Chun-Yun, GUO Hui-Jun, XIE Yong-Dun, ZHAO Lin-Shu, GU Jia-Yu, ZHAO Shi-Rong, DING Yu-Ping, XU Yan-Hao, LIU Lu-Xiang. Genetic analysis of wheat dwarf mutant je0098 and molecular mapping of dwarfing gene [J]. Acta Agronomica Sinica, 2022, 48(3): 580-589. |
[5] | CHEN Yun, LI Si-Yu, ZHU An, LIU Kun, ZHANG Ya-Jun, ZHANG Hao, GU Jun-Fei, ZHANG Wei-Yang, LIU Li-Jun, YANG Jian-Chang. Effects of seeding rates and panicle nitrogen fertilizer rates on grain yield and quality in good taste rice cultivars under direct sowing [J]. Acta Agronomica Sinica, 2022, 48(3): 656-666. |
[6] | LIU Yun-Jing, ZHENG Fei-Na, ZHANG Xiu, CHU Jin-Peng, YU Hai-Tao, DAI Xing-Long, HE Ming-Rong. Effects of wide range sowing on grain yield, quality, and nitrogen use of strong gluten wheat [J]. Acta Agronomica Sinica, 2022, 48(3): 716-725. |
[7] | WANG Ying, GAO Fang, LIU Zhao-Xin, ZHAO Ji-Hao, LAI Hua-Jiang, PAN Xiao-Yi, BI Chen, LI Xiang-Dong, YANG Dong-Qing. Identification of gene co-expression modules of peanut main stem growth by WGCNA [J]. Acta Agronomica Sinica, 2021, 47(9): 1639-1653. |
[8] | HAN Yu-Zhou, ZHANG Yong, YANG Yang, GU Zheng-Zhong, WU Ke, XIE Quan, KONG Zhong-Xin, JIA Hai-Yan, MA Zheng-Qiang. Effect evaluation of QTL Qph.nau-5B controlling plant height in wheat [J]. Acta Agronomica Sinica, 2021, 47(6): 1188-1196. |
[9] | SHEN Wen-Qiang, ZHAO Bing-Bing, YU Guo-Ling, LI Feng-Fei, ZHU Xiao-Yan, MA Fu-Ying, LI Yun-Feng, HE Guang-Hua, ZHAO Fang-Ming. Identification of an excellent rice chromosome segment substitution line Z746 and QTL mapping and verification of important agronomic traits [J]. Acta Agronomica Sinica, 2021, 47(3): 451-461. |
[10] | FU Hong-Yu, CUI Guo-Xian, LI Xu-Meng, SHE Wei, CUI Dan-Dan, ZHAO Liang, SU Xiao-Hui, WANG Ji-Long, CAO Xiao-Lan, LIU Jie-Yi, LIU Wan-Hui, WANG Xin-Hui. Estimation of ramie yield based on UAV (Unmanned Aerial Vehicle) remote sensing images [J]. Acta Agronomica Sinica, 2020, 46(9): 1448-1455. |
[11] | HAN Zhan-Yu,GUAN Xian-Yue,ZHAO Qian,WU Chun-Yan,HUANG Fu-Deng,PAN Gang,CHENG Fang-Min. Individual and combined effects of air temperature at filling stage and nitrogen application on storage protein accumulation and its different components in rice grains [J]. Acta Agronomica Sinica, 2020, 46(7): 1087-1098. |
[12] | JIANG Peng,HE Yi,ZHANG Xu,WU Lei,ZHANG Ping-Ping,MA Hong-Xiang. Genetic analysis of plant height and its components for wheat (Triticum aestivum L.) cultivars Ningmai 9 and Yangmai 158 [J]. Acta Agronomica Sinica, 2020, 46(6): 858-868. |
[13] | Juan MA, Yan-Yong CAO, Li-Feng WANG, Jing-Jing LI, Hao WANG, Yan-Ping FAN, Hui-Yong LI. Identification of gene co-expression modules of maize plant height and ear height by WGCNA [J]. Acta Agronomica Sinica, 2020, 46(3): 385-394. |
[14] | HUO Qiang,YANG Hong,CHEN Zhi-You,JIAN Hong-Ju,QU Cun-Min,LU Kun,LI Jia-Na. Candidate genes screening for plant height and the first branch height based on QTL mapping and genome-wide association study in rapessed (Brassica napus L.) [J]. Acta Agronomica Sinica, 2020, 46(02): 214-227. |
[15] | CUI Yue,LU Jian-Nong,SHI Yu-Zhen,YIN Xue-Gui,ZHANG Qi-Hao. Genetic analysis of plant height related traits in Ricinus communis L. with major gene plus polygenes mixed model [J]. Acta Agronomica Sinica, 2019, 45(7): 1111-1118. |
|