栽培
选择(遗传算法)
特质
粮食产量
生物
氮气
产量(工程)
基因型
农学
生物技术
园艺
化学
基因
遗传学
人工智能
有机化学
冶金
材料科学
程序设计语言
计算机科学
作者
Bhudeva Singh Tyagi,J. Foulkes,Gyanendra Pratap Singh,Sindhu Sareen,Pradeep Kumar,Martin R. Broadley,Vikas Gupta,Gopalareddy Krishnappa,Ashish Ojha,Jaswant S. Khokhar,I. P. King,Gyanendra Pratap Singh
出处
期刊:Agronomy
[MDPI AG]
日期:2020-03-19
卷期号:10 (3): 417-417
被引量:24
标识
DOI:10.3390/agronomy10030417
摘要
A set of thirty-six wheat cultivars were grown for two consecutive years under low and high nitrogen conditions. The interactions of cultivars with different environmental factors were shown to be highly significant for most of the studied traits, suggesting the presence of wider genetic variability which may be utilized for the genetic improvement of desired trait(s). Three cultivars, i.e., RAJ 4037, DBW 39 and GW 322, were selected based on three selection indices, i.e., tolerance index (TOL), stress susceptibility index (SSI), and yield stability index (YSI), while two cultivars, HD 2967 and MACS 6478, were selected based on all four selection indices which were common in both of the study years. According to Kendall’s concordance coefficient, the consistency of geometric mean productivity (GMP) was found to be highest (0.778), followed by YSI (0.556), SSI (0.472), and TOL (0.200). Due to the high consistency of GMP followed by YSI and SSI, the three selection indices could be utilized as a selection tool in the identification of high-yielding genotypes under low nitrogen conditions. The GMP and YSI selection indices had a positive and significant correlation with grain yield, whereas TOL and SSI exhibited a significant but negative correlation with grain yield under both high and low nitrogen conditions in both years. The common tolerant genotypes identified through different selection indices could be utilized as potential donors in active breeding programs to incorporate the low nitrogen tolerant genes to develop high-yielding wheat varieties for low nitrogen conditions. The study also helps in understanding the physiological basis of tolerance in high-yielding wheat genotypes under low nitrogen conditions.
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