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F1 杂种的性能预测,这些杂种是由两个优秀的玉米自交系衍生的重组自交系。

Performance prediction of F1 hybrids between recombinant inbred lines derived from two elite maize inbred lines.

机构信息

National Maize Improvement Center, China Agricultural University, Beijing 100193, China.

出版信息

Theor Appl Genet. 2013 Jan;126(1):189-201. doi: 10.1007/s00122-012-1973-9. Epub 2012 Sep 13.

Abstract

Selection of recombinant inbred lines (RILs) from elite hybrids is a key method in maize breeding especially in developing countries. The RILs are normally derived by repeated self-pollination and selection. In this study, we first investigated the accuracy of different models in predicting the performance of F(1) hybrids between RILs derived from two elite maize inbred lines Zong3 and 87-1, and then compared these models through simulation using a wider range of genetic models. Results indicated that appropriate prediction models depended on genetic architecture, e.g., combined model using breeding value and genome-wide prediction (BV+GWP) has the highest prediction accuracy for high V(D)/V(A) ratio (>0.5) traits. Theoretical studies demonstrated that different components of genetic variance were captured by different prediction models, which in turn explained the accuracy of these models in predicting the F(1) hybrid performance. Based on genome-wide prediction model (GWP), 114 untested F(1) hybrids possibly having higher grain yield than the original F(1) hybrid Yuyu22 (the single cross between Zong3 and 87-1) have been identified and recommended for further field test.

摘要

从优良杂交种中选择重组自交系(RIL)是玉米育种的关键方法,特别是在发展中国家。RIL 通常通过反复自交和选择产生。在这项研究中,我们首先研究了不同模型在预测来自两个优良玉米自交系 Zong3 和 87-1 的 RIL 之间的 F1 杂种性能的准确性,然后通过使用更广泛的遗传模型进行模拟比较了这些模型。结果表明,适当的预测模型取决于遗传结构,例如,使用育种值和全基因组预测(BV+GWP)的组合模型对高 V(D)/V(A) 比(>0.5)性状具有最高的预测准确性。理论研究表明,不同的预测模型捕捉了遗传方差的不同组成部分,这反过来解释了这些模型在预测 F1 杂种表现方面的准确性。基于全基因组预测模型(GWP),已经鉴定并推荐了 114 个未经测试的 F1 杂种,它们可能具有比原始 F1 杂种豫玉 22(Zong3 和 87-1 的单交种)更高的籽粒产量,以供进一步田间试验。

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