数字农科院2.0

Genetic Dissection of Low Phosphorus Tolerance Related Traits Using Selected Introgression Lines in Rice

文献类型: 外文期刊

作者: Xiang Chao;Ren Jie;Zhao Xiu-qin;Ding Zai-song;Zhang Jing;Wang Chao;Zhang Jun-wei;Joseph, Charles Augustino;Zhang Qiang;Pang Yun-long;Gao Yong-ming;Ren Jie;Zhang Jing;Wang Chao;Zhang Jun-wei;Shi Ying-yao;Ren Jie

作者机构:

关键词: rice;phosphorus tolerance;yield;introgression line;quantitative trait locus

期刊名称: RICE SCIENCE

ISSN: 1672-6308

年卷期: 2015 年 22 卷 6 期

页码:

收录情况: SCI

摘要: To dissect the genetic basis of low phosphorus tolerance (LPT), 114 BC2F4 introgression lines (ILs) were developed from Shuhui 527 and Minghui 86 (recurrent parents), and Yetuozai (donor parent). The progenies were tested for 11 quantitative traits under three treatments including normal fertilization in normal soil (as control), normal fertilization in barren soil and low phosphorus stress in barren soil in Langfang, Hebei Province, China. Moreover, the ILs were investigated at the seedling stage using nutrient solution culture method in greenhouse in Beijing, China. A total of 49 main-effect quantitative trait loci (QTLs) underlying yield related traits were identified in Langfang, and their contributions to phenotypic variations ranged from 6.7% to 16.5%. Among them, 25 (51.0%) QTLs had favorable alleles from donor parent. A total of 48 main-effect QTLs were identified for LPT-related traits in Beijing, and their contributions to phenotypic variations ranged from 7.7% to 16.6%. Among them, 21 (43.8%) QTLs had favorable alleles from donor parent. About 79.6% of the QTLs can be detected repeatedly under two or more treatments, especially QTLs associated with spikelet number per panicle, spikelet fertility and 1000-grain weight, displaying consistent phenotypic effects. Among all the detected QTLs, eight QTLs were simultaneously identified under low phosphorus stress across two environments. These results can provide useful information for the genetic dissection of LPT in rice.

分类号:

  • 相关文献

[1]Identification of quantitative trait loci for drought tolerance at seedling stage by screening a large number of introgression lines in maize. Hao, Z.,Liu, X.,Li, X.,Xie, C.,Li, M.,Zhang, D.,Zhang, S.,Hao, Z.,Xu, Y..

[2]Genetic Dissection of Rice Ratooning Ability Using an Introgression Line Population and Substitution Mapping of a Pleiotropic Quantitative Trait Locus qRA5. Hui Hu,Ruoyu Gao,Liping He,Famao Liang,Zhixin Li,Junying Xu,Longwei Yang,Chongrong Wang,Zhangyong Liu,Jianlong Xu,Xianjin Qiu. 2022

[3]Comparative transcriptome sequencing of tolerant rice introgression line and its parents in response to drought stress. Huang, Liyu,Zhang, Fan,Zhang, Fan,Wang, Wensheng,Zhou, Yongli,Fu, Binying,Li, Zhikang,Zhang, Fan. 2014

[4]Genome-wide gene expression profiling of introgressed indica rice alleles associated with seedling cold tolerance improvement in a japonica rice background. Zhang, Fan,Huang, Liyu,Wang, Wensheng,Zhao, Xiuqin,Zhu, Linghua,Fu, Binying,Li, Zhikang,Zhang, Fan,Huang, Liyu,Wang, Wensheng,Zhao, Xiuqin,Zhu, Linghua,Fu, Binying,Li, Zhikang,Li, Zhikang. 2012

[5]Identification of salt tolerance-improving quantitative trait loci alleles from a salt-susceptible rice breeding line by introgression breeding. Qiu, Xianjin,Yuan, Zhihua,Liu, Huan,Yang, Longwei,He, Wenjing,Du, Bin,Xing, Danying,Xiang, Xiaojiao,Xu, Jianlong,Ye, Guoyou,Xu, Jianlong.

[6]Multi-Omics Analysis Reveals the Regulatory and Metabolic Mechanisms Underlying Low-Nitrogen Tolerance at the Flowering Stage in Rice. Yanru Wang,Jing Jiang,Yukang Qian,Siyu Miao,Wensheng Wang,Jianlong Xu,Binying Fu,Fan Zhang,Xiuqin Zhao. 2023

[7]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.

[8]QTL analysis across multiple environments reveals promising chromosome regions associated with yield-related traits in maize under drought conditions. Xinmin Hu,Guihua Wang,Xuemei Du,Hongwei Zhang,Zhenxiang Xu,Jie Wang,Guo Chen,Bo Wang,Xuhui Li,Xunji Chen,Junjie Fu,Jun Zheng,Jianhua Wang,Riliang Gu,Guoying Wang. 2021

[9]Quantitative Trait Loci for Panicle Size and Grain Yield Detected in Interval RM111-RM19 784 on the Short Arm of Rice Chromosome 6. GONG Jun Yi , DU Jing-hong +, FAN Ye-yang , WU Ji-rong , ZHUANG Jie-yun *. 2010

[10]水稻淡褐斑叶突变体lbsll的遗传分析与基因定位. 奉保华,杨杨,施勇烽,林璐,陈洁,黄奇娜,魏彦林,HeiLEUNG,吴建利. 2012

[11]OsBTF3转基因水稻对病原茵侵染的反应和防卫基因的表达分析. 陈华民,吴茂森,何晨阳. 2012

[12]Mapping of Quantitative Trait Loci for Contents of Macro- and Microelements in Milled Rice (Oryza sativa L.). Yu, Yong-Hong,Shao, Ya-Fang,Liu, Jie,Fan, Ye-Yang,Sun, Cheng-Xiao,Cao, Zhao-Yun,Zhuang, Jie-Yun.

[13]Mapping QTLs related to rice seed storability under natural and artificial aging storage conditions. Ngo Thi Hang,Lin, Qiuyun,Liu, Linglong,Liu, Xi,Liu, Shijia,Wang, Wenyan,Li, Linfang,He, Niqing,Liu, Zhou,Jiang, Ling,Wan, Jianmin,Wan, Jianmin.

[14]Mapping of qGL7-2, a grain length QTL on chromosome 7 of rice. Shao, Gaoneng,Tang, Shaoqing,Luo, Ju,Jiao, Guiai,Wei, Xiangjin,Tang, Ao,Wu, Jianli,Zhuang, Jieyun,Hu, Peisong. 2010

[15]Identification of quantitative trait loci for seed storability in rice (Oryza sativa L.). Li, Linfang,Lin, Qiuyun,Liu, Shijia,Liu, Xi,Wang, Wenyan,Ngo Thi Hang,Liu, Feng,Zhao, Zhigang,Jiang, Ling,Wan, Jianmin. 2012

[16]Identification of QTLs Underlying Folate Content in Milled Rice. Dong Wei,Cheng Zhi-jun,Xu Jian-long,Zheng Tian-qing,Wang Xiao-le,Zhang Hong-zheng,Wang Jie,Wan Jian-min. 2014

[17]Identification and characterization of quantitative trait loci for grain yield and its components under different nitrogen fertilization levels in rice (Oryza sativa L.). Han-hua Tong (3), Liang Chen +, Wei-ping Li +, Han-wei Mei , Yong-zhong Xing , Xing-qiao Yu , Xiao-yan Xu , Shan-qing Zhang , Li-jun Luo *. 2011

[18]Quantitative Trait Locus Analysis for Rice Yield Traits under Two Nitrogen Levels. FENG Yue , ZHAI Rong-rong , LIN Ze-chuan , CAO Li-yong , WEI Xing-hua , CHENG Shi-hua *. 2015

[19]Dissection of the qTGW1.1 region into two tightly-linked minor QTLs having stable effects for grain weight in rice. Hong-Wei Zhang , Ye-Yang Fan , Yu-Jun Zhu , Jun-Yu Chen , Si-Bin Yu , Jie-Yun Zhuang *. 2016

[20]Dissecting the Genetic Basis of Extremely Large Grain Shape in Rice Cultivar 'JZ1560'. Jie-Zheng Ying (2), Ji-Ping Gao , Jun-Xiang Shan , Mei-Zhen Zhu , Min Shi , Hong-Xuan Lin *. 2012

作者其他论文 更多>>