Evaluation of productivity and stability of elite summer soybean cultivars in multi-environment trials

文献类型: 外文期刊

第一作者: Qin, Jun

作者: Qin, Jun;Yang, Chunyan;Zhang, Mengchen;Xu, Ran;Zhang, Lifeng;Li, Haichao;Lu, Weiguo;Liu, Duan;Liu, Zhangxiong;Qiu, Lijuan;Frett, Terrence;Chen, Pengyin

作者机构:

关键词: Summer soybean;GGEbiplot (TM);Yield;Adaptability

期刊名称:EUPHYTICA ( 影响因子:1.895; 五年影响因子:2.181 )

ISSN:

年卷期:

页码:

收录情况: SCI

摘要: Spring soybean cultivars produced in moderate climates currently represent almost the entire soybean industry; however, soybean production has the potential to be extended into the summer months in different regions of the world. It is critical to select the correct soybean cultivar for production in a specific environment. The purpose of this study was therefore to evaluate the productivity (yield) and stability of the current summer soybean cultivars in multi-environment trials in the Huang-Huai-Hai region, presently the largest summer soybean-producing region in the world, to determine which cultivars will be most successful for large scale production in this region, as well as those that should be used in future breeding efforts. A total of 94 summer soybean cultivars were grown in the three major soybean production provinces, i.e., Shandong, Henan, and Hebei, over 3 years (2008-2010). The GGEbiplot (TM) software provided a "genotype x genotype-by-environment interaction' function to evaluate the importance of agronomic factors controlling the soybean yield of each cultivar across the nine different environments. Xudou10, Zhonghuang39, Lu93748-1 and Lu99-1 exhibited relatively high average yields. The stability among the high-yielding cultivars was ranked in decreasing order as Xudou10, Zheng99048, Jidou7, Yudou18, and Gaozuoxuan-1. Among all recorded factors, the pod number per plant was the most important factor controlling yield, followed by seed number per plant, effective branch number, and 100-seed weight, which positively affected soybean yield. In contrast, a higher bottom pod height, greater number of nodes on the main stem, and longer growth duration were negatively correlated with yield.

分类号: S3

  • 相关文献

[1]Adaptability and use of introduced cultivars of Pyrus pyrifolia nakai in Gansu province of China. Li, YS,Wang, FL,Ma, CH. 2002

[2]N, P Contribution and soil adaptability of four arbuscular mycorrhizal fungi. Wenke, Liu.

[3]Gender-related differences in adaptability to drought stress in the dioecious tree Ginkgo biloba. He, Mei,Shi, Dawei,Wang, Tao,Xie, Yinfeng,He, Mei,Shi, Dawei,Wang, Tao,Xie, Yinfeng,He, Mei,Hu, Yuan,Wei, Xiaodong.

[4]Evaluation of the livelihood vulnerability of pastoral households in Northern China to natural disasters and climate change. Ding, Wenqiang,Ren, Weibo,Li, Ping,Hou, Xiangyang,Li, Xiliang,Xie, Jihong,Ding, Yong,Sun, Xiaolong.

[5]Field evaluation of an Amaranthus genetic resource collection in China. Wu, HX,Sun, M,Yue, SX,Sun, HL,Cai, Y,Huang, RH,Brenner, D,Corke, H. 2000

[6]A simplified pruning method for profitable cotton production in the Yellow River valley of China. Dai, Jianlong,Luo, Zhen,Li, Weijiang,Tang, Wei,Zhang, Dongmei,Lu, Hequan,Li, Zhenhuai,Xin, Chengsong,Kong, Xiangqiang,Eneji, A. Egrinya,Dong, Hezhong.

[7]The optimal leaf area index for cucumber photosynthesis and production in plastic greenhouse. Xiaolei, S,Zhifeng, W. 2004

[8]Effects of Soil Salinity and Plant Density on Yield and Leaf Senescence of Field-Grown Cotton. Zhang, H. J.,Dong, H. Z.,Li, W. J.,Zhang, D. M.,Zhang, H. J.. 2012

[9]Heterosis in yield, endotoxin expression and some physiological parameters in Bt transgenic cotton. Dong, H. Z.,Li, W. J.,Tang, W.,Li, Z. H.,Zhang, D. M.. 2007

[10]The Comparative Analysis of Spatial Structure of Ji Wheat 22 Yield Based on Different Stochastic Samplings. Yang, Yujian,Tong, Xueqin. 2012

[11]Effect of Chemical Fertilizer Dose on Yield, Quality and Nutrient Utilization Rate of Sweet Pepper in Organic Substrate. Lv Xiao-Hui,Yang Ning,Wang Ke-An. 2013

[12]Yield, quality and leaf senescence of cotton grown at varying planting dates and plant densities in the Yellow River Valley of China. Dong, HZ,Li, WJ,Tang, W,Li, ZH,Zhang, DM,Niu, YH. 2006

[13]Effects of plant density and nitrogen and potassium fertilization on cotton yield and uptake of major nutrients in two fields with varying fertility. Dong, Hezhong,Kong, Xiangqiang,Li, Weijiang,Tang, Wei,Zhang, Dongmei. 2010

[14]18-year grass hedge effect on soil water loss and soil productivity on sloping cropland. Yao, Li,Lin, ChaoWen,Wang, Xie,Xu, WenZhi,Wang, Hong,Liu, HaiTao. 2018

[15]Overexpression of an Apocynum venetum DEAD-Box Helicase Gene (AvDH1) in Cotton Confers Salinity Tolerance and Increases Yield in a Saline Field. Jie Chen,Sibao Wan,Huaihua Liu,Shuli Fan,Yujuan Zhang,Wei Wang,Minxuan Xia,Rui Yuan,Fenni Deng,Fafu Shen. 2016

[16]INTERCROPPING DIFFERENT VARIETIES OF RADISH CAN INCREASE CADMIUM ACCUMULATION IN RADISH. Liao, Ming'an,Mei, Luoyin,Liu, Qihua,Shi, Jun,Sun, Jinlong.

[17]Spatial distribution of light interception by different plant population densities and its relationship with yield. Huiyun Xue,Yingchun Han,Yabing Li,Guoping Wang,Lu Feng,Zhengyi Fan,Wenli Du,Beifang Yang,Cougui Cao,Shuchun Mao.

[18]Characterization of high-yield performance as affected by genotype and environment in rice. Chen, Song,Zeng, Fang-rong,Zhang, Guo-ping,Pao, Zong-zhi. 2008

[19]Yield Evaluation of Twenty-Eight Alfalfa Cultivars in Hebei Province of China. Zhang Tie-jun,Kang Jun-mei,Guo Wen-shan,Yang Qing-chuan,Zhao Zhong-xiang,Xu Yu-peng,Yan Xu-dong. 2014

[20]Dissection of component QTL expression in yield formation in rice. Guo, LB,Xing, YZ,Mei, HW,Xu, CG,Shi, CH,Wu, P,Luo, LJ. 2005

作者其他论文 更多>>