Selection and genetic improvement of pollen fertility restorer lines with Triticum timopheevii, cytoplasm in common wheat

文献类型: 外文期刊

第一作者: Zhou, WC

作者: Zhou, WC;Zhao, YH;Zou, ML;Wang, SW

作者机构:

关键词: Triticum aestivum;hybrid wheat;pollen fertility restoration;restoring gene

期刊名称:PLANT BREEDING ( 影响因子:1.832; 五年影响因子:1.956 )

ISSN: 0179-9541

年卷期: 1999 年 118 卷 3 期

页码:

收录情况: SCI

摘要: The paper summarizes the selection and improvement of pollen fertility restoration in cytoplasmic male-sterile lines during the past 30 years at Jiangsu Province, China. A fertility restorer line (R16) with a good history of strong and stable restoring ability to different sterile lines was bred by accumulating fertility-restoring genes from derivatives of T808 and other restorer lines such as Primepi. A series of well-performing restorer lines with similar fertility-restoring ability has been bred by improving agronomic characters, disease-resistance and kernel size of R16. The restoring ability of these restorer lines using different male-sterile lines demonstrates that fertility restoration is no longer an obstacle for commercial utilization of hybrid wheat with the Triticum timopheeviii cytoplasmic male-sterile system. Line 2114 is a restorer with a single restoring gene transferred from Aegilops umbellulata. Its restoring ability, using both difficult and easily restored lines was 82% and 93.3%, respectively. Maiyou No. 5, one hybrid variety, showed 13.2% yield advantage over the control variety in the Jiangsu Province registration test in 1997-1998 and was superior to nine other varieties adapted to the Jiangsu Province.

分类号:

  • 相关文献

[1]Heterosis and combining ability for plant height and its components in hybrid wheat with Triticum timopheevi cytoplasm. Peng, JH,Liu, ZQ. 1997

[2]Breaking wheat yield barriers requires integrated efforts in developing countries. Rauf, Saeed,Khalil, Farghama,Zaharieva, Maria,Warburton, Marilyn L.,Zhang Ping-zhi,Al-Sadi, Abdullah M.,Kozak, Marcin,Tariq, Sultan A.. 2015

[3]SSR markers associated with fertility restoration genes against Triticum timopheevii cytoplasm in Diticum aestivum. Zhou, WC,Kolb, FL,Domier, LL,Wang, SW. 2005

[4]Comprehensive analyses of the annexin gene family in wheat. Xu, Lei,Tang, Yimiao,Gao, Shiqing,Hong, Lin,Wang, Weiwei,Fang, Zhaofeng,Li, Xueyin,Ma, Jinxiu,Quan, Wei,Sun, Hui,Wang, Yongbo,Liao, Xiangzheng,Gao, Jiangang,Zhang, Fengting,Zhao, Changping,Li, Xia,Li, Lei,Li, Xia,Li, Lei,Xu, Lei,Su, Shichao. 2016

[5]Chromosome sorting and its applications in common wheat (Triticum aestivum) genome sequencing. Wu SuoWei,Zheng Xu,Liu BingHua,Yang Li,Song MeiFang,Zhou Peng,Zhou Yang,Meng FanHua,Wang ShanHong,Liu HongWei,Zhai HuQu,Yang JianPing,Xiao Yang,Zheng Xu,Cai YingFan,Yang JianPing,Dolezel, Jaroslav,Song MeiFang. 2010

[6]Characterization of a cell wall invertase gene TaCwi-A1 on common wheat chromosome 2A and development of functional markers. Dongyun Ma,Jun Yan,Zhonghu He,Ling Wu,Xianchun Xia.

[7]Mineral element concentrations in grains of Chinese wheat cultivars. Yong Zhang,Qichao Song,Jun Yan,Jianwei Tang,Rongrong Zhao,Yueqiang Zhang,Zhonghu He,Chunqin Zou,Ivan Ortiz-Monasterio. 2010

[8]Transgenic wheat expressing Thinopyrum intermedium MYB transcription factor TiMYB2R-1 shows enhanced resistance to the take-all disease. Liu, Xin,Yang, Lihua,Zhou, Xianyao,Lu, Yan,Zhang, Zengyan,Yang, Lihua,Ma, Lingjian,Zhou, Miaoping,Ma, Hongxiang.

[9]QTL mapping for plant height and yield components in common wheat under water-limited and full irrigation environments. Li, Xingmao,Xia, Xianchun,Xiao, Yonggui,He, Zhonghu,Wang, Desen,Chen, Xinmin,Li, Xingmao,He, Zhonghu,Trethowan, Richard,Wang, Huajun.

[10]Single-nucleotide polymorphisms and association analysis of drought-resistance gene TaSnRK2.8 in common wheat. Zhang, Hongying,Zhang, Hongying,Mao, Xinguo,Zhang, Jianan,Chang, Xiaoping,Jing, Ruilian.

[11]The ERF transcription factor TaERF3 promotes tolerance to salt and drought stresses in wheat. Rong, Wei,Qi, Lin,Ye, Xingguo,Du, Lipu,Liang, Hongxia,Xin, Zhiyong,Zhang, Zengyan,Rong, Wei,Wang, Aiyun.

[12]Water-soluble phenolic compounds in the coat control germination and peroxidase reactivation in Triticum aestivum seeds. Kong, Lingan,Wang, Fahong,Si, Jisheng,Feng, Bo,Li, Shengdong.

[13]Single nucleotide polymorphism tightly linked to a major QTL on chromosome 7A for both kernel length and kernel weight in wheat. Su, Zhenqi,Su, Zhenqi,Jin, Sujuan,Lu, Yue,Zhang, Guorong,Bai, Guihua,Jin, Sujuan,Chao, Shiaoman,Bai, Guihua.

[14]A Simple Method for the Assessment of Crown Rot Disease Severity in Wheat Seedlings Inoculated with Fusarium pseudograminearum. Li, Xiangmin,Liu, Chunji,Chakraborty, Sukumar,Manners, John M.,Kazan, Kemal,Li, Xiangmin.

[15]Mapping QTLs for seedling root traits in a doubled haploid wheat population under different water regimes. Liu, Xiulin,Chang, Xiaoping,Jing, Ruilian,Liu, Xiulin,Li, Runzhi.

[16]Mapping QTL for stay-green and agronomic traits in wheat under diverse water regimes. Shi, Shenkui,Azam, Farooq I.,Li, Huihui,Chang, Xiaoping,Jing, Ruilian,Shi, Shenkui,Li, Baoyun,Azam, Farooq I..

[17]Stripe rust resistance gene Yr18 and its suppressor gene in Chinese wheat landraces. Zhu, Huazhong,Li, Shizhao,Xia, Xianchun,He, Zhonghu,Rosewarne, Garry M.,Zhang, Zhengyu,He, Zhonghu.

[18]Expression of a wheat MYB gene in transgenic tobacco enhances resistance to Ralstonia solanacearum, and to drought and salt stresses. Liu, Hongxia,Zhou, Xianyao,Dong, Na,Liu, Xin,Zhang, Zengyan,Zhou, Xianyao,Zhang, Huaiyu.

[19]The wheat (T. aestivum) sucrose synthase 2 gene (TaSus2) active in endosperm development is associated with yield traits. Jiang, Qiyan,Hou, Jian,Hao, Chenyang,Wang, Lanfen,Dong, Yushen,Zhang, Xueyong,Ge, Hongmei.

[20]Overexpression of TaPIEP1, a pathogen-induced ERF gene of wheat, confers host-enhanced resistance to fungal pathogen Bipolaris sorokiniana. Dong, Na,Liu, Xin,Lu, Yan,Du, LiPu,Xu, Huijun,Liu, Hongxia,Xin, Zhiyong,Zhang, Zengyan.

作者其他论文 更多>>