OsLG3 contributing to rice grain length and yield was mined by Ho-LAMap

文献类型: 外文期刊

第一作者: Xiong, Haiyan

作者: Xiong, Haiyan;Zhu, Xiaoyang;Zhang, Hongliang;Miao, Jinli;Zhang, Zhanying;Yao, Guoxin;Zhang, Qiang;Pan, Yinghua;Wang, Xin;Rashid, M. A. R.;Li, Jinjie;Li, Zichao;Li, Huihui;Wang, Wensheng;Gao, Yongming;Li, Zhikang;Tang, Zuoshun;Yang, Weicai;Fu, Xiangdong;Pan, Yinghua

作者机构:

关键词: GWAS;Linkage mapping;Observed heterozygosity;Ho-LAMap;OsLG3;Grain length;Rice domestication;Artificial selection;Genetic interaction

期刊名称:BMC BIOLOGY ( 影响因子:7.431; 五年影响因子:8.182 )

ISSN: 1741-7007

年卷期: 2017 年 15 卷

页码:

收录情况: SCI

摘要: Background: Most agronomic traits in rice are complex and polygenic. The identification of quantitative trait loci (QTL) for grain length is an important objective of rice genetic research and breeding programs. Results: Herein, we identified 99 QTL for grain length by GWAS based on approximately 10 million single nucleotide polymorphisms from 504 cultivated rice accessions (Oryza sativa L.), 13 of which were validated by four linkage populations and 92 were new loci for grain length. We scanned the Ho (observed heterozygosity per locus) index of coupled-parents of crosses mapping the same QTL, based on linkage and association mapping, and identified two new genes for grain length. We named this approach as Ho-LAMap. A simulation study of six known genes showed that Ho-LAMap could mine genes rapidly across a wide range of experimental variables using deep-sequencing data. We used Ho-LAMap to clone a new gene, OsLG3, as a positive regulator of grain length, which could improve rice yield without influencing grain quality. Sequencing of the promoter region in 283 rice accessions from a wide geographic range identified four haplotypes that seem to be associated with grain length. Further analysis showed that OsLG3 alleles in the indica and japonica evolved independently from distinct ancestors and low nucleotide diversity of OsLG3 in indica indicated artificial selection. Phylogenetic analysis showed that OsLG3 might have much potential value for improvement of grain length in japonica breeding. Conclusions: The results demonstrated that Ho-LAMap is a potential approach for gene discovery and OsLG3 is a promising gene to be utilized in genomic assisted breeding for rice cultivar improvement.

分类号:

  • 相关文献

[1]Genome-wide association mapping of QTL underlying seed oil and protein contents of a diverse panel of soybean accessions. Li, Ying-hui,Hong, Hui-long,Li, Hui-hui,Liu, Zhang-xiong,Tian, Yun,Li, Yan-fei,Qiu, Li-juan,Reif, Jochen C.,Ma, Yan-song,Li, Jun,Li, Wen-bin. 2018

[2]Identification of stable QTLs for seed oil content by combined linkage and association mapping in Brassica napus. Sun, Fengming,Liu, Jing,Hua, Wei,Sun, Xingchao,Wang, Xinfa,Wang, Hanzhong.

[3]Genomic dissection of small RNAs in wild rice (Oryza rufipogon): lessons for rice domestication. Wang, Yu,Bai, Xuefei,Yan, Chenghai,Gui, Yiejie,Fan, Longjiang,Wang, Yu,Bai, Xuefei,Yan, Chenghai,Gui, Yiejie,Fan, Longjiang,Wei, Xinghua,Guo, Longbiao,Zhu, Qian-Hao.

[4]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

[5]Association Mapping of Grain Weight, Length and Width in Barley (Hordeum vulgare) Breeding Germplasm. Liu, X.,Ma, L.,Feng, Z.,Lai, Yunping,Yu, Y.,Wan, H.,Zhang, Z.,Wang, L.,Leng, Y.,Yang, W.,Ma, L.. 2017

[6]Genetic dissection of large grain shape in rice cultivar 'Nanyangzhan' and validation of a grain thickness QTL (qGT3.1) and a grain length QTL (qGL3.4). Zhao, Da,Li, Pingbo,Wang, Lingqiang,Sun, Liang,Xia, Duo,Luo, Lijun,Gao, Guanjun,Zhang, Qinglu,He, Yuqing,Zhao, Da,Li, Pingbo,Wang, Lingqiang,Sun, Liang,Xia, Duo,Luo, Lijun,Gao, Guanjun,Zhang, Qinglu,He, Yuqing,Luo, Lijun. 2017

[7]Genetic Effects of Background-Independent Loci for Grain Weight and Shape Identified using Advanced Reciprocal Introgression Lines from Lemont x Teqing in Rice. Zheng, T. Q.,Zhu, L. H.,Sun, Y.,Zhai, H. Q.,Xu, Z. J.,Li, Z. K.,Wang, Y.,Xu, Z. J.,Ali, A. J.,Li, Z. K.,Mei, H. W..

[8]QTL mapping for fiber quality traits across multiple generations and environments in upland cotton. Fu-Ding Sun,Jian-Hong Zhang,Shu-Fang Wang,Wan-Kui Gong,Yu-Zhen Shi,Ai-Ying Liu,Jun-Wen Li,Ju-Wu Gong,Hai-Hong Shang,You-Lu Yuan.

[9]Analysis of Fitness Predominance for Gaoyou Duck's Double Yolk Egg. Zhang, Tangjie,Chang, Hong,Li, Hui-Fang,Chen, Kuanwei,Zhao, Yonggao,Xuec, Minkai,Zhang, Shengfu. 2011

[10]A genomic perspective on the important genetic mechanisms of upland adaptation of rice. Lyu, Jun,Gou, Zhiheng,Wang, Wen,Li, Baoye,Zhang, Shilai,Zhang, Jing,Tao, Dayun,Huang, Wangqi,Hu, Fengyi,He, Weiming,Meng, Liyun,Li, Xin. 2014

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

[12]A preliminary study for identification of candidate AFLP markers under artificial selection for shell color in pearl oyster Pinctada fucata. Zou, Keshu,Zhang, Dianchang,Guo, Huayang,Zhu, Caiyan,Li, Min,Jiang, Shigui,Zou, Keshu,Zhang, Dianchang,Li, Min,Jiang, Shigui.

[13]Evidence of balancing selection in multiple indigenous chicken populations. Arlud, S.,Zeng, S. C.,Arlud, S.,Arlud, S.,E, G. X.. 2016

[14]A non-synonymous SNP within the isopentenyl transferase 2 locus is associated with kernel weight in Chinese maize inbreds (Zea mays L.). Weng, Jianfeng,Liu, Changlin,Hao, Zhuanfang,Li, Mingshun,Zhang, Degui,Ci, Xiaoke,Li, Xinhai,Zhang, Shihuang,Li, Bo,Wang, Hongwei,Yang, Xiaoyan. 2013

[15]Molecular footprints of domestication and improvement in soybean revealed by whole genome re-sequencing. Li, Ying-hui,Yan, Long,Qi, Xiao-tian,Zhang, Le,Chang, Ru-zhen,Guo, Yong,Wang, Xiao-bo,Guan, Rong-xia,Liu, Yu-lin,Jin, Long-guo,Liu, Zhang-xiong,Zhang, Li-juan,Wang, Ke-jing,Qiu, Li-juan,Zhao, Shan-cen,Li, Dong,Li, Jun,Guo, Xiao-sen,He, Wei-ming,Liang, Qin-si,Ye, Chen,Tao, Yong,Wang, Jun-yi,Zhang, Xiu-qing,Chen, Jie,Nielsen, Rasmus,Li, Rui-qiang,Wang, Jian,Wang, Jun,Ma, Jian-xin,Yan, Long,Zhang, Meng-chen,Tao, Yong,Nielsen, Rasmus,Wang, Jun,Wang, Jun-yi,Nielsen, Rasmus,Nielsen, Rasmus,Chen, Peng-yin,Li, Wen-bin,Reif, Jochen C.,Purugganan, Michael,Purugganan, Michael. 2013

[16]Gene duplication confers enhanced expression of 27-kDa gamma-zein for endosperm modification in quality protein maize. Liu, Hongjun,Sun, Chuanlong,Zheng, Xixi,Yuan, Ningning,Li, Changsheng,Zhang, Zhiyong,Deng, Yiting,Wang, Jiechen,Wu, Yongrui,Shi, Junpeng,Lai, Jinsheng,Shi, Junpeng,Lai, Jinsheng,Gong, Hao,Huang, Xuehui,Feng, Qi,Han, Bin,Fan, Xingming,Qiu, Fazhan,Pan, Guangtang,Pan, Guangtang.

[17]Pedigree-based analysis of derivation of genome segments of an elite rice reveals key regions during its breeding. Zhou, Degui,Wang, Chongrong,Li, Hong,Li, Kanghuo,Zhou, Shaochuan,Chen, Wei,Lin, Zechuan,Chen, Haodong,Yu, Renbo,Zhen, Gang,He, Hang,Deng, Xing Wang,Chen, Wei,Lin, Zechuan,Chen, Haodong,Yu, Renbo,Zhen, Gang,He, Hang,Deng, Xing Wang,Chen, Wei,Chen, Haodong,Yu, Renbo,Zhen, Gang,Tang, Xiaoyan,He, Hang,Deng, Xing Wang,Zhang, Fengyun,Yi, Junliang,Zhou, Shaochuan,Liu, Yaoguang,Terzaghi, William,He, Hang,Deng, Xing Wang.

[18]Molecular analysis of grass carp (Ctenopharyngodon idella) by SRAP and SCAR molecular markers. Ding, Wei-dong,Cao, Zhe-ming,Cao, Li-ping.

[19]Primary genome scan for complex body shape-related traits in the common carp Cyprinus carpio. Zhang, Y.,Wang, S.,Li, J.,Jiang, L.,Xu, P.,Sun, X.,Zhang, X.,Lu, C.,Sun, X.,Lu, C.,Wan, Y.. 2013

[20]Mapping Genes Governing Flower and Seedcoat Color in Asparagus Bean (Vigna unguiculata ssp sesquipedalis) Based on Single Nucleotide Polymorphism and Simple Sequence Repeat Markers. Xu, Pei,Hu, Tingting,Yang, Yuejian,Wu, Xiaohua,Wang, Baogen,Liu, Yonghua,Qin, Dehui,Lu, Zhongfu,Li, Guojing,Ehlers, Jeffrey,Close, Timothy. 2011

作者其他论文 更多>>