您好,欢迎访问黑龙江省农业科学院 机构知识库!

Stability of growth periods traits for soybean cultivars across multiple locations

文献类型: 外文期刊

作者: Wang Xiao-bo 2 ; Liu Zhang-xiong 1 ; Yang Chun-yan 3 ; Xu Ran 4 ; Lu Wei-guo; Zhang Li-feng 5 ; Wang Qian; Wei Su-h 1 ;

作者机构: 1.Chinese Acad Agr Sci, Natl Key Facil Gene Resources & Genet Improvement, Key Lab Crop Germplasm Utilizat, Minist Agr,Inst Crop Sci, Beijing 100081, Peoples R China

2.Anhui Agr Univ, Sch Agron, Hefei 230036, Peoples R China

3.Hebei Acad Agr & Forestry Sci, Huang Huai Hai Key Lab Biol & Genet Improvement S, Natl Soybean Improvement Ctr,Minist Agr,Hebei Gen, IInstitute Cereal & Oil Crops,Shijiazhuang Subctr, Shijiazhuang 050035, Peoples R China

4.Shandong Acad Agr Sci, Inst Crop Sci, Jinan 250010, Peoples R China

5.Shandong Acad A

关键词: soybean;growth periods;maturity group;environmental stability

期刊名称:JOURNAL OF INTEGRATIVE AGRICULTURE ( 影响因子:2.848; 五年影响因子:2.979 )

ISSN: 2095-3119

年卷期: 2016 年 15 卷 5 期

页码:

收录情况: SCI

摘要: The growth periods (GPs, from planting/emergence to reproductive stage 8 (R8) of soybean cultivars vary in different ecological regions, especially in China with a very complex soybean cropping system. In this study, a 3-yr experimental study was undertaken in three geographical locations of China from 2008 to 2010, including the Northeast (40.66-45.85 degrees N), Huang-Huai (34.75-38.04 degrees N) and southern (22.82-30.60 degrees N) eco-regions with about 250 accessions in each region to clarify the classification of maturity group (MG) and identify the cultivars with stable GP to increase the knowledge about the GP distribution of soybean cultivars in China. GPs of soybean cultivars in different eco-regions were significant different with a gradual decrease from 115-125 d in the Northeast part to the 85-100 d in the southern part of China. The geographical location was the major factor for GP of cultivars from the Northeast, while the year of planting was the major factor affecting the stability of GPs in Huang-Huai summer and southern summer soybean. AMMI2 (additive main effects and multiplicative interaction)-Biplot analysis showed that the GPs of soybean cultivars from the Northeast eco-region have a comparatively satisfactory environmental stability. Moreover, soybean cultivars with moderate GP/MG and stable environment adaptability in different eco-regions were identified based on the linear regression and AMMI analysis, which was important for the accurate classification of soybean MGs in future. Taken together, our results reflected the genetic diversity, geographical distribution and environmental stability of the Chinese soybean GP trait. Soybean cultivars with stable GP for various Chinese eco-regions would be beneficial for Chinese soybean genetic improvement, varietal introduction, exchange, and soybean breeding program for wide adaptability.

  • 相关文献

[1]Cloning and Analyzing of Disease Resistance Gene Analogs from Soybean. LIU Jie,LIU Li-jun,WU Jun-jiang,CHEN Yi-li,LI Kang,ZHANG Cheng-liang. 2005

[2]Cloning and Analyzing of Disease Resistance Gene Analogs from Soybean. LIU Jie,LIU Li-jun,WU Jun-jiang,CHEN Yi-li,LI Kang,ZHANG Cheng-liang,中国科学院文献情报中心; 中国生物技术发展中心; 中国生物工程学会;. 2005

[3]Geographical distribution of GmTfl1 alleles in Chinese soybean varieties. Liu, Guifeng,Zhao, Lin,Qiu, Lijuan,Liu, Ying,Chang, Ruzhen,Guan, Rongxia,Qiu, Lijuan,Averitt, Benjamin J.,Zhang, Bo,Ma, Yansong,Luan, Xiaoyan. 2015

[4]Flavor characteristic analysis of soymilk prepared by different soybean cultivars and establishment of evaluation method of soybean cultivars suitable for soymilk processing. Shi Xiaodi,Li Jingyan,Guo Shuntang,Wang Shuming,Zhang Lei,Qiu Lijuan,Han Tianfu,Wang Qianyu,Chang Sam Kow-Ching.

[5]QTL effects and epistatic interaction for flowering time and branch number in a soybean mapping population of JapanesexChinese cultivars. Yang Guang,Xie Fu-ti,Zhai Hong,Wu Hong-yan,Zhang Xing-zheng,Wang Ya-ying,Li Yu-qiu,Hu Bo,Wang Lu,Xia Zheng-jun,Zhang Xing-zheng,Wang Ya-ying,Li Yu-qiu,Wang Lu,Yang Guang,Lu Shi-xiang,Wen Zi-xiang,Wang De-chun,Wang Shao-dong,Harada, Kyuya. 2017

[6]GmFW1 expression decreased in GmSymRK knockdown transgenic soybean roots. Wang, Lijun,Deng, Lingwei,Jiao, Yongqing.

[7]The relation between C-4 pathway enzymes and PSII photochemical function in soybean. Li, WH,Lu, QT,Hao, NB,Ge, QY,Zhang, QD,Jiang, GM,Du, WG,Kuang, TY. 2000

[8]MICROBIAL ACTIVITY AND COMMUNITY DIVERSITY IN TOBACCO RHIZOSPHERIC SOIL AFFECTED BY DIFFERENT PRE-CROPS. Li, X.,Zhang, X.,Yue, B.,Sun, G.,Li, X.,Zhang, H.,He, G.,Xu, N.,Sun, M.,Zhao, Y.. 2017

[9]Pathogenicity of Pythium species causing seed rot and damping-off in soybean under controlled conditions. Xue, Allen G.,Cober, Elroy R.,Babcock, Carolyn,Zhang, Jinxiu,Wei, Lai,Zhang, Shuzhen,Li, Wenbin,Wu, Junjiang,Liu, Lijun. 2010

[10]Temporospatial Characterization of Nutritional and Bioactive Components of Soybean Cultivars in China. Wu, Tingting,Yao, Yang,Sun, Shi,Wang, Caijie,Song, Wenwen,Wu, Cunxiang,Jiang, Bingjun,Hou, Wensheng,Ren, Guixing,Han, Tianfu,Jia, Hongchang,Man, Weiqun,Fu, Lianshun.

[11]Differential expression of a WRKY gene between wild and cultivated soybeans correlates to seed size. Gu, Yongzhe,Wang, Yan,Gao, Huihui,He, Chaoying,Gu, Yongzhe,Gao, Huihui,He, Chaoying,Li, Wei,Liu, Miao,Lai, Yongcai,Jiang, Hongwei,Chen, Qingshan.

[12]Detecting SNPs underlying domestication-related traits in soybean. Li, Ying-Hui,Ma, Yan-Song,Chang, Ru-Zhen,Qiu, Li-Juan,Reif, Jochen C.,Jackson, Scott A.,Ma, Yan-Song. 2014

[13]Fine Mapping and Identification of a Novel Phytophthora Root Rot Resistance Locus RpsZS18 on Chromosome 2 in Soybean. Zhong, Chao,Sun, Suli,Duan, Canxing,Zhu, Zhendong,Yao, Liangliang,Ding, Junjie. 2018

[14]Genetic overlap of QTL associated with low-temperature tolerance at germination and seedling stage using BILs in soybean. Zhang, Wen-Bo,Jiang, Hong-wei,Liu, Chun-Yan,Hu, Guo-Hua,Zhang, Wen-Bo,Jiang, Hong-wei,Xin, Da-Wei,Chen, Qing-Shan,Hu, Guo-Hua,Li, Can-Dong,Zhang, Wen-Bo,Qiu, Peng-Cheng,Chen, Fei-Long. 2012

[15]QTL analysis of soybean oil content under 17 environments. Qi, Zhaoming,Hou, Meng,Xin, Dawei,Wang, Zhongyu,Zhu, Rongsheng,Hu, Zhenbang,Chen, Qingshan,Han, Xue,Jiang, Hongwei,Liu, Chunyan,Hu, Guohua,Li, Candong. 2014

[16]Ectopic expression of Arabidopsis thaliana Na+(K+)/H+ antiporter gene, AtNHX5, enhances soybean salt tolerance. Wu, X. X.,Li, J.,Wu, X. D.,Wang, Z. K.,Liu, S. S.,Li, S. N.,Ma, Y. L.,Zhao, L.,Li, H. Y.,Li, D. M.,Li, W. B.,Liu, Q.,Su, A. Y.,Sun, J.. 2016

[17]GmACP expression is decreased in GmNORK knockdown transgenic soybean roots. Wang, Lijun,Deng, Lingwei. 2016

[18]Construction and analysis of a suppression subtractive hybridization library of regeneration-related genes in soybean. Sun, J.,Li, J.,Liu, M.,Zhang, B. B.,Li, D. M.,Wang, M.,Zhang, C.,Li, W. B.,Wu, X. X.,Sun, J.,Su, A. Y.. 2015

[19]Differentially Expressed Genes of Soybean During Infection by Phytophthora sojae. Xu Peng-fei,Li Wen-bin,Fan Su-jie,Li Ning-hui,Wang Xin,Jiang Liang-yu,Zhang Shu-zhen,Wu Jun-jiang,Wei Lai,Xue, Allen,Chen Wei-yuan,Lv Hui-ying,Lin Shi-feng. 2012

[20]Analysis of the APX Gene Expressed in Soybean Infected by Heterodera glycines and Coated with Biocontrol Bacteria Sneb545. Xiang, Peng,Li, Hongpeng,Lu, Wencheng,Li, Baohua,Xiang, Peng,Zhu, Feng,Chen, Jingsheng,Li, Hongpeng,Chen, Lijie,Duan, Yuxi,Chen, Jingsheng. 2016

作者其他论文 更多>>