Engineered Dwarf Male-Sterile Rice: A Promising Genetic Tool for Facilitating Recurrent Selection in Rice

文献类型: 外文期刊

第一作者: Ansari, Afsana

作者: Ansari, Afsana;Wang, Chunlian;Wang, Jian;Wang, Fujun;Gao, Ying;Tang, Yongchao;Zhao, Kaijun;Wang, Jian;Wang, Fujun;Liu, Piqing;Ansari, Afsana

作者机构:

关键词: rice breeding;dwarf;male-sterile;emasculation;recurrent selection;RNAi;multiple gene manipulation

期刊名称:FRONTIERS IN PLANT SCIENCE ( 影响因子:5.753; 五年影响因子:6.612 )

ISSN: 1664-462X

年卷期: 2017 年 8 卷

页码:

收录情况: SCI

摘要: Rice is a crop feeding half of the world's population. With the continuous raise of yield potential via genetic improvement, rice breeding has entered an era where multiple genes conferring complex traits must be efficiently manipulated to increase rice yield further. Recurrent selection is a sound strategy for manipulating multiple genes and it has been successfully performed in allogamous crops. However, the difficulties in emasculation and hand pollination had obstructed efficient use of recurrent selection in autogamous rice. Here, we report development of the dwarf male-sterile rice that can facilitate recurrent selection in rice breeding. We adopted RNAi technology to synergistically regulate rice plant height and male fertility to create the dwarf male-sterile rice. The RNAi construct pTCK-EGGE, targeting the OsGA20ox2 and OsEAT1 genes, was constructed and used to transform rice via Agrobacterium-mediated transformation. The transgenic T0 plants showing largely reduced plant height and complete male-sterile phenotypes were designated as the dwarf male-sterile plants. Progenies of the dwarf male-sterile plants were obtained by pollinating them with pollens from the wild-type. In the T1 and T2 populations, half of the plants were still dwarf male-sterile; the other half displayed normal plant height and male fertility which were designated as tall and male-fertile plants. The tall and male-fertile plants are transgene-free and can be self-pollinated to generate new varieties. Since emasculation and hand pollination for dwarf male-sterile rice plants is no longer needed, the dwarf male-sterile rice can be used to perform recurrent selection in rice. A dwarf male-sterile rice-based recurrent selection model has been proposed.

分类号:

  • 相关文献

[1]Chromosome Location of the Male-sterility and Yellow Seedling Gene in Line 1066A of Foxtail Millet. Wang, RQ,Gao, JH,Mao, LP,Du, RH,Diao, XM,Sun, JS.

[2]Genetic diversity among populations and breeding lines from recurrent selection in Brassica napus as revealed by RAPD markers. Yuan, M,Zhou, Y,Liu, D. 2004

[3]Comparison of evaluation methods for selection of resistance to Fusarium head blight in a recurrent selection programme in wheat (Triticum aestivum L.). Yang, ZP,Yang, XY,Huang, DC. 1999

[4]Improvement of resistance to Fusarium head blight by recurrent selection in an intermating breeding spring wheat population using the dominant male-sterile gene ms(2). Yang, ZP,Yang, XY,Huang, DC. 2000

[5]Recurrent selection breeding by dominant male sterility for multiple abiotic stresses tolerant rice cultivars. Pang, Yunlong,Wang, Xiaoqian,Xu, Jianlong,Li, Zhikang,Pang, Yunlong,Wang, Xiaoqian,Ali, Jauhar,Pang, Yunlong,Chen, Kai,Xu, Jianlong,Xu, Jianlong,Li, Zhikang.

[6]Protein Kinase LTRPK1 Influences Cold Adaptation and Microtubule Stability in Rice. Liu, Wei,Fang, Xiaoliang,Wang, Qingguo,Li, Zhen,Yao, Fangyin,Hou, Lei,Ji, Shuxia,Dai, Shaojun,Fang, Xiaoliang. 2013

[7]Developing rice lines possessing neutral alleles at sterility loci to improve the width of compatibility. Lu, CG,Zou, JS,Ikehashi, H. 2004

[8]Construction of chromosomal segment substitution lines and genetic dissection of introgressed segments associated with yield determination in the parents of a super-hybrid rice. Liu, Xi,Zhao, Zhigang,Liu, Linglong,Xiao, Yinghui,Tian, Yunlu,Liu, Shi-Jia,Chen, Liangming,Wang, Yihua,Liu, Yuqiang,Chen, Saihua,Zhang, Wenwei,Wang, Chunming,Jiang, Ling,Wan, Jianmin,Wan, Jianmin.

[9]"Two-floret spikelet' as a novel resource has the potential to increase rice yield. Ren, Deyong,Yu, Haiping,Rao, Yuchun,Xu, Qiankun,Zhou, Tingting,Hu, Jiang,Zhang, Yu,Zhang, Guangheng,Zhu, Li,Gao, Zhenyu,Chen, Guang,Guo, Longbiao,Zeng, Dali,Qian, Qian,Rao, Yuchun. 2018

[10]Molecular characterization and genetic diversity of different genotypes of Oryza sativa and Oryza glaberrima. Chen, Caijin,He, Wenchuang,Nassirou, Tondi Yacouba,Nsabiyumva, Athanase,Dong, Xilong,Jin, Deming,Adedze, Yawo Mawunyo Nevame. 2017

[11]Recent progress on molecular breeding of rice in China. Rao, Yuchun,Li, Yuanyuan,Qian, Qian,Rao, Yuchun. 2014

[12]LSCHL4 from Japonica Cultivar, Which Is Allelic to NAL1, Increases Yield of Indica Super Rice 93-11. Zhang, Guang-Heng,Wang, Li,Ye, Wei-Jun,Zeng, Da-Li,Rao, Yu-Chun,Peng, You-Lin,Hu, Jiang,Yang, Yao-Long,Xu, Jie,Ren, De-Yong,Gao, Zhen-Yu,Zhu, Li,Dong, Guo-Jun,Hu, Xing-Ming,Yan, Mei-Xian,Guo, Long-Biao,Qian, Qian,Li, Shu-Yu,Li, Chuan-You.

[13]A genome-wide analysis of wide compatibility in rice and the precise location of the S-5 locus in the molecular map. Liu, KD,Wang, J,Li, HB,Xu, CG,Liu, AM,Li, XH,Zhang, QF. 1997

[14]Down-regulation of the OsPDCD5 gene induced photoperiod-sensitive male sterility in rice. Wang, Yufeng,Zha, Xiaojun,Qian, Xiaoyin,Dong, Xianxin,Sun, Fan,Yang, Jinshui,Zhang, Shiyong. 2010

[15]Detection of epistatic interaction of two QTLs, gw8.1 and gw9.1, underlying grain weight using nearly isogenic lines in rice. Jin, Feng-Xue,Ji, Shi-Dong,Kang, Ju-Won,Ahn, Sang-Nag,Xie, Xiao-Bo,Ju, Hong-Guang.

[16]Mutations in the MIT3 gene encoding a caroteniod isomerase lead to increased tiller number in rice. Liu, Lihua,Peng, Peng,Qiu, Haiyang,Zhao, Jinfeng,Fang, Jingjing,Patil, Suyash Bhimgonda,Li, Xueyong,Xie, Tingting,Zhang, Wenhui,Wang, Yiqin,Fang, Shuang,Chu, Jinfang,Yuan, Shoujiang. 2018

[17]Genetic and gene expression analysis of dm1, a dwarf mutant from Cucurbita maxima Duch. ex Lam, based on the AFLP method. Wang, Rui,Huang, Hexun,Lin, Yu'e,Liang, Zhaojun,Wu, Tingquan,Wang, Rui,Wu, Tingquan,Chen, Qinghua. 2014

[18]Let-7b Regulates Myoblast Proliferation by Inhibiting IGF2BP3 Expression in Dwarf and Normal Chicken. Lin, Shumao,Luo, Wen,Bekele, Endashaw J.,Nie, Qinghua,Zhang, Xiquan,Lin, Shumao,Luo, Wen,Bekele, Endashaw J.,Nie, Qinghua,Zhang, Xiquan,Lin, Shumao,Luo, Wen,Bekele, Endashaw J.,Nie, Qinghua,Zhang, Xiquan,Lin, Shumao,Ye, Yaqiong,Ye, Yaqiong,Li, Yugu. 2017

[19]Genetic analysis and fine-mapping of a dwarfing with withered leaf-tip mutant in rice. Jiang, Liang,Guo, Longbiao,Jiang, Hua,Zeng, Dali,Hu, Jiang,Wu, Liwen,Liu, Jian,Gao, Zhenyu,Qian, Qian,Jiang, Liang,Wu, Liwen. 2008

[20]MULTI-TILLERING DWARF1, a new allele of BRITTLE CULM 12, affects plant height and tiller in rice. Yu, Haiping,Zhu, Yangzhou,Xu, Jiangmin,Lu, Mei,Ma, Bojun,Rao, Yuchun,Yu, Haiping,Ren, Deyong,Zhu, Yangzhou,Wang, Yuexing,Liu, Ruifang,Fang, Yunxia,Shi, Zhenyuan,Pan, Jiangjie,Hu, Jiang,Rao, Yuchun,Yu, Haiping,Yu, Haiping. 2016

作者其他论文 更多>>