您好,欢迎访问江西省农业科学院 机构知识库!

Short and erect rice (ser) mutant from Khao Dawk Mali 105' improves plant architecture

文献类型: 外文期刊

作者: Yan, Wengui 1 ; Hu, Biaolin 2 ; Zhang, Qijun 3 ; Jia, Limeng 1 ; Jackson, Aaron 1 ; Pan, Xuhao 1 ; Huang, Bihu 7 ; Yan, Z 1 ;

作者机构: 1.USDA ARS, Dale Bumpers Natl Rice Res Ctr, Stuttgart, AR USA

2.Jiangxi Acad Agr Sci, Rice Res Inst, Nanchang, Peoples R China

3.Jiangsu Acad Agr Sci, Food Crop Res Inst, Nanjing, Jiangsu, Peoples R China

4.Zhejiang Univ, Inst Nucl Agr Sci, State Key Lab Rice Biol, Hangzhou 310003, Zhejiang, Peoples R China

5.Univ Arkansas, Rice Res & Extens Ctr, Stuttgart, AR USA

6.Sichuan Agr Univ, Rice Res Inst, Chengdu, Peoples R China

7.Univ Arkansas, Pine Bluff, AR USA

关键词: rice;gene mutation;plant architecture;gene pleiotropy;grain yield

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

ISSN:

年卷期:

页码:

收录情况: SCI

摘要: Plant architecture includes branching (tillering) pattern, plant height, leaf shape and angle, and the structure of reproductive organs. These attributes are of major agronomic importance as they determine the adaptability of a plant to various methods of cultivation, which in turn influence harvest index and grain yield. We detected a recessive mutant from the aromatic cultivar Khao Dawk Mali 105 (KDM105), which exhibits a plant architecture with shorter height, shorter and more erect leaves and panicle than the wild type. The mutant line was named ser for short and erect rice. The ser mutation was induced by 30 kilorads of gamma radiation. Averaged from 10 mature plants grown in the greenhouse, the ser had 104.6 degrees smaller angle between the flag leaf and culm, compared with the KDM105 wild type. For the leaf below the flag leaf, the ser mutant was 46.2 degrees more erect than the wild type. The length of the flag, 2nd and 3rd leaf of the ser was 21.8, 24.4 and 16.3 cm shorter than the wild type, respectively. Plant height as measured from soil surface to flag leaf tip was reduced by 43.5 cm, while plant height measured from soil to panicle tip was reduced by 28.5 cm in the ser in comparison with the wild type. Characterization of 10 booting plants each of the ser, wild and their reciprocal F1 populations confirmed the shortening mutation with no cytoplasmic effect. The ser was identically monomorphic to its wild type and F1 hybrid for all 11 SSR markers covering seven chromosomes, indicating a true mutation. In the F2 generation, a ratio of three wild type to one ser was observed, resulting in a chi(2) of 0.067 (P = 0.795) for a single gene segregation and demonstrating a recessive mutation. The ser will be an ideal material for the study on gene pleiotropy and metabolism functions. Further, the pleiotropic gene in such a premium quality cultivar globally known will be valuable for improving plant architecture in rice cultivars.

  • 相关文献

[1]Study on Flowering Habits of GMS Rice Lian 9S. Zou Guoxing,Yin Jianhua,Liu Yibai,Peng Zhiqing,Yang Ping,Huang Yongping,Chen Chunlian,Xu Lanxiang,Jiangxi Association for Science & Technology(CN);. 2005

[2]Differences in the impacts of nighttime warming on crop growth of rice-based cropping systems under field conditions. Chen, Jin,Peng, Chunrui,Chen, Changing,Tian, Yunlu,Zhang, Xin,Zhang, Jun,Zheng, Chengyan,Deng, Aixing,Song, Zhenwei,Zhang, Weijian,Dong, Wenjun,Zhang, Bin.

[3]Estimating Grain Yield Based on BSW and SPAD at Grain Filling Stage in Double Rice Cropping System of China. Liu Kailou,Zhang Huimin,Liu Kailou,Li Yazhen,Yu Paolan,Yan, Wu,Zhou Lijun,Hu Huiwen. 2016

[4]Nitrogen management to reduce yield-scaled global warming potential in rice. Liang, X. Q.,Ye, Y. S.,Ji, Y. J.,Tian, G. M.,Li, H.,Wang, S. X.,van Kessel, C.,Linquist, B. A.. 2013

[5]Analysis of genotypic and environmental effects on rice starch. 1. Apparent amylose content, pasting viscosity, and gel texture. Bao, JS,Kong, XL,Xie, JK,Xu, LJ. 2004

[6]Fine mapping of a major QTL for flag leaf width in rice, qFLW4, which might be caused by alternative splicing of NAL1. Chen, Mingliang,Luo, Ju,Shao, Gaoneng,Wei, Xiangjin,Tang, Shaoqing,Sheng, Zhonghua,Song, Jian,Hu, Peisong,Chen, Mingliang.

[7]Differential proteomic analysis of rice seedlings reveals the advantage of dry-raising nursery practices. Zhang, Zhixing,Huang, Fenglian,Chen, Hongfei,Lin, Wenxiong,Zhang, Zhixing,Huang, Fenglian,Chen, Hongfei,Lin, Wenxiong,Shao, CaiHong. 2018

[8]Differences in fertilization impacts on organic carbon content and stability in a paddy and an upland soil in subtropical China. Sun, Yanni,Huang, Shan,Yu, Xichu,Zhang, Weijian.

[9]Different Aluminum Tolerance among Indica, Japonica and Hybrid Rice Varieties. Shu Chang,Wu Jing-hao,Shi Gao-ling,Lou Lai-qing,Deng Jun-xia,Cai Qing-sheng,Wan Jian-lin. 2015

[10]Analysis of genotypic and environmental effects on rice starch. 2. Thermal and retrogradation properties. Xu, LJ,Xie, JK,Kong, XL,Bao, JS. 2004

[11]Rapid prediction of acid detergent fiber, neutral detergent fiber, and acid detergent lignin of rice materials by near-infrared spectroscopy. Kong, XL,Xie, JK,Wu, XL,Huang, YJ,Bao, JS.

[12]Mapping quantitative trait loci associated with starch paste viscosity in rice (Oryza sativa L.) under different environmental conditions. Yao, Xiaoyun,Wang, Jiayu,Liu, Jin,Zhang, Jia,Ma, Dianrong,Xu, Hai,Xu, Zhengjin,Yao, Xiaoyun,Wang, Jiayu,Zhang, Jia,Ma, Dianrong,Xu, Hai,Xu, Zhengjin,Liu, Jin,Ren, Chunyuan.

[13]Characterization and fine mapping of a female fertility associated gene Ff1(t) in rice. Zhao, Lei,Yan, Song,Huang, Renliang,Zhu, Shan,Xiong, Hongliang,Shen, Xianhua,Peng, Zhiqin,Huang, Yingjin.

[14]Genetic diversity and population structure in a rice drought stress panel. Tabanao, Dindo A.,Pocsedio, Arnel E.,Yabes, Jonalyn C.,Nino, Marjohn C.,Millas, Reneth A.,Sevilla, Neah Rosandra L.,Xiao Yulong,Yu, Jianming.

[15]Genotypic and phenotypic characterization of genetic differentiation and diversity in the USDA rice mini-core collection. Jia, Limeng,Wu, Dianxing,Li, Xiaobai,Li, Xiaobai,Agrama, Hesham,Jia, Limeng,Moldenhauer, Karen,Li, Xiaobai,Yan, Wengui,Jia, Limeng,Jia, Melissa,Jackson, Aaron,McClung, Anna,Hu, Biaolin.

[16]A Simple and Accurate Resistance Identification Method of Rice to Neck Blast Disease InVitro. Lan, Bo,Yang, Ying-Qing,Chen, Hong-Fan,Li, Xiang-Min,Jiang, Jun-Xi.

[17]Genotyping the Heading Date of Male-Sterile Rice Line II-32A. Xu, JF,Jiang, L,Wei, XJ,Zhang, WW,Liu, SJ,Chen, LM,Wang, CM,Luo, LG,Wan, JM.

作者其他论文 更多>>