Molecular mapping of gene Gm-6(t) which confers resistance against four biotypes of Asian rice gall midge in China

文献类型: 外文期刊

第一作者: Katiyar, SK

作者: Katiyar, SK;Tan, Y;Huang, B;Chandel, G;Xu, Y;Zhang, Y;Xie, Z;Bennett, J

作者机构:

关键词: rice (Oryza sativa);gall midge;Orseolia oryzae;RAPD;mapping;sequence tagged sites

期刊名称:THEORETICAL AND APPLIED GENETICS ( 影响因子:5.699; 五年影响因子:5.565 )

ISSN: 0040-5752

年卷期: 2001 年 103 卷 6-7 期

页码:

收录情况: SCI

摘要: The Chinese rice cultivar Duokang #1 carries a single dominant gene Gm-6(t) that confers resistance to the four biotypes of Asian rice gall midge (Orseolia oryzae Wood-Mason) known in China. Bulked segregant analysis was performed on progeny of a cross between Duokang #1 and the gall midge-susceptible cultivar Feng Yin Zhan using the RAPD method. The RAPD marker OPM06((1400)) amplified a locus linked to Gm-6(t). The locus was subsequently mapped to rice chromosome 4 in a region flanked by cloned RFLP markers RG214 and RG163. Fine mapping of Gm-6(t) revealed that markers RG214 and RG476 flanked the gene at distances of LO and 2.3 cM, respectively. Another gall midge resistance gene, Gm-2, mapped previously to chromosome 4. is located about 16 cM from Gm-6(t). to judge by data from a segregating population derived from a cross between Duokang #1 and the Indian cultivar Phalguna that carries Gm-2. We developed a PCR-based marker-assisted selection kit for transfer of the Gm-6(t) gene into Ming Hui 63 and IR50404, two parental lines commonly used in hybrid rice production in China. The kit contains PCR primer pairs based on the terminal sequences of the RG214 and RG476 clones. Polymorphism between Duokang #1 and the hybrid parental lines was found at these markers after digestion of the PCR products with specific restriction endonucleases. The kit will accelerate introduction of gall midge resistance into hybrid rice in China.

分类号:

  • 相关文献

[1]Genetic analysis and pyramiding of two gall midge resistance genes (Gm-2 and Gm-6t) in rice (Oryza sativa L.). Katiyar, S,Verulkar, S,Chandel, G,Zhang, Y,Huang, B,Bennett, J. 2001

[2]Functional markers in wheat: current status and future prospects. Liu, Yanan,He, Zhonghu,Xia, Xianchun,He, Zhonghu,Appels, Rudi.

[3]Preliminary Study on the Leaf-Gall Midge Asphondylia sp - a New Insect Pest of Longan (Sapindaceae) in China. Hu, H. Q.,Wu, R. J.,Wei, X. X.,Cai, Z. J.,Chen, J.,Pan, S. L.,Wen, S. X.. 2010

[4]Mapping quantitative trait loci associated with arsenic accumulation in rice (Oryza sativa). Zhang, Jing,Zhu, Yong-Guan,Duan, Gui-Lan,Zeng, Da-Li,Qian, Qian,Cheng, Wang-Da. 2008

[5]Recent progress on rice genetics in China. Jiang, Hua,Guo, Long-Biao,Qian, Qian. 2007

[6]A model for photothermal responses of flowering in rice .1. Model description and parameterization. Yin, XY,Kropff, MJ,Horie, T,Nakagawa, H,Centeno, HGS,Zhu, DF,Goudriaan, J. 1997

[7]Young Leaf Chlorosis 1, a chloroplast-localized gene required for chlorophyll and lutein accumulation during early leaf development in rice. Zhou, Kunneng,Ren, Yulong,Lv, Jia,Wang, Yihua,Liu, Feng,Zhou, Feng,Zhao, Shaolu,Chen, Saihua,Peng, Cheng,Jiang, Ling,Wan, Jianmin,Zhang, Xin,Guo, Xiuping,Cheng, Zhijun,Wang, Jiulin,Wu, Fuqing,Wan, Jianmin.

[8]A receptor-like protein RMC is involved in regulation of iron acquisition in rice. Yang, An,Zhang, Wen-Hao,Li, Yansu,Xu, Yunyun,Zhang, Wen-Hao.

[9]Interactions of Oryza sativa OsCONTINUOUS VASCULAR RING-LIKE 1 (OsCOLE1) and OsCOLE1-INTERACTING PROTEIN reveal a novel intracellular auxin transport mechanism. Liu, Fei,Zhang, Lan,Luo, Yanzhong,Xu, Miaoyun,Fan, Yunliu,Wang, Lei.

[10]Novel roles of hydrogen peroxide (H2O2) in regulating pectin synthesis and demethylesterification in the cell wall of rice (Oryza sativa) root tips. Xiong, Jie,Yang, Yongjie,Fu, Guanfu,Tao, Longxing,Xiong, Jie.

[11]Integrated analysis of rice transcriptomic and metabolomic responses to elevated night temperatures identifies sensitivity- and tolerance-related profiles. Glaubitz, Ulrike,Li, Xia,Schaedel, Sandra,Erban, Alexander,Sulpice, Ronan,Kopka, Joachim,Hincha, Dirk K.,Zuther, Ellen,Li, Xia,Schaedel, Sandra,Sulpice, Ronan.

[12]DEFORMED FLORAL ORGAN1 (DFO1) regulates floral organ identity by epigenetically repressing the expression of OsMADS58 in rice (Oryza sativa). Zheng, Ming,Wang, Yihua,Wang, Yunlong,Wang, Chunming,Lv, Jia,Peng, Cheng,Wu, Tao,Liu, Kai,Zhao, Shaolu,Liu, Xi,Jiang, Ling,Wan, Jianmin,Ren, Yulong,Guo, Xiuping,Wan, Jianmin,Terzaghi, William.

[13]OsARG encodes an arginase that plays critical roles in panicle development and grain production in rice. Ma, Xuefeng,Cheng, Zhijun,Qin, Ruizhen,Heng, Yueqin,Yang, Hui,Wang, Xiaole,Bi, Jingcui,Ma, Xiaoding,Zhang, Xin,Wang, Jiulin,Lei, Cailin,Guo, Xiuping,Wang, Jie,Wu, Fuqing,Wang, Haiyang,Wan, Jianmin,Qiu, Yang,Ren, Yulong,Jiang, Ling,Wan, Jianmin. 2013

[14]Excessive UDPG resulting from the mutation of UAP1 causes programmed cell death by triggering reactive oxygen species accumulation and caspase-like activity in rice. Xiao, Guiqing,Lu, Xiangyang,Xiao, Guiqing,Zhou, Jiahao,Huang, Rongfeng,Zhang, Haiwen. 2018

[15]OsHAK1, a High-Affinity Potassium Transporter, Positively Regulates Responses to Drought Stress in Rice. Chen, Guang,Liu, Chaolei,Gao, Zhenyu,Zhang, Yu,Jiang, Hongzhen,Zhu, Li,Ren, Deyong,Qian, Qian,Chen, Guang,Yu, Ling,Xu, Guohua. 2017

[16]The pleiotropic ABNORMAL FLOWER AND DWARF1 affects plant height, floral development and grain yield in rice. Ren, Deyong,Rao, Yuchun,Wu, Liwen,Xu, Qiankun,Li, Zizhuang,Yu, Haiping,Zhang, Yu,Leng, Yujia,Hu, Jiang,Zhu, Li,Gao, Zhenyu,Dong, Guojun,Zhang, Guangheng,Guo, Longbiao,Zeng, Dali,Qian, Qian,Rao, Yuchun,Li, Zizhuang. 2016

[17]Map-based cloning and functional analysis of YGL8, which controls leaf colour in rice (Oryza sativa). Zhu, Xiaoyan,Guo, Shuang,Wang, Zhongwei,Du, Qing,Xing, Yadi,Zhang, Tianquan,Shen, Wenqiang,Sang, Xianchun,Ling, Yinghua,He, Guanghua,Guo, Shuang,Du, Qing. 2016

[18]GLUCAN SYNTHASE-LIKE 5 (GSL5) Plays an Essential Role in Male Fertility by Regulating Callose Metabolism During Microsporogenesis in Rice. Shi, Xiao,Sun, Xuehui,Zhang, Zhiguo,Feng, Dan,Zhang, Qian,Han, Lida,Wu, Jinxia,Lu, Tiegang.

[19]Impaired Magnesium Protoporphyrin IX Methyltransferase (ChlM) Impedes Chlorophyll Synthesis and Plant Growth in Rice. Wang, Zhaohai,Hong, Xiao,Hu, Keke,Wang, Ya,Wang, Xiaoxin,Li, Yang,Hu, Dandan,Cheng, Kexin,An, Baoguang,Li, Yangsheng,Wang, Zhaohai,Du, Shiyun. 2017

[20]A comprehensive genetic study reveals a crucial role of CYP90D2/D2 in regulating plant architecture in rice (Oryza sativa). Li, Hui,Jiang, Ling,Wan, Jianmin,Sun, Wei,Cheng, Zhijun,Jin, Tianyun,Ma, Xiaoding,Guo, Xiuping,Wang, Jiulin,Zhang, Xin,Wu, Fuqing,Wu, Chuanyin,Wan, Jianmin,Youn, Ji-Hyun,Kim, Seong-Ki.

作者其他论文 更多>>