首页> 外文期刊>Theoretical and Applied Genetics: International Journal of Breeding Research and Cell Genetics >An additive-dominance model to determine chromosomal effects in chromosome substitution lines and other gemplasms
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An additive-dominance model to determine chromosomal effects in chromosome substitution lines and other gemplasms

机译:确定染色体替代系和其他宝石中的染色体效应的加性优势模型

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When using chromosome substitution (CS) lines in a crop breeding improvement program, one needs to separate the effects of the substituted chromosome from the remaining chromosomes. This cannot be done with the traditional additive-dominance (AD) model where CS lines, recurrent parent, and their hybrids are used. In this study, we develop a new genetic model and software, called a modified AD model with genotype x environment interactions, which can predict additive and dominance genetic effects attributed to a substituted alien chromosome in a CS line as well as the overall genetic effects of the non-substituted chromosomes. In addition, this model will predict the additive and dominance effects of the same chromosome of interest (i.e. chromosome 25 of cotton in this study) in an inbred line, as well as the effects of the remaining chromosomes in the inbred line. The model requires a CS line, its recurrent parent and their F(1) and/or F(2) hybrids between the substitution lines and several inbred lines. Monte Carlo simulation results showed that genetic variance components were estimated with no or slight bias when we considered this modified AD model as random. The correlation coefficient between predicted effects and true effects due to the chromosomes of interest varied from zero to greater than 0.90 and it was positively relative to the difference between the CS line and the recurrent line. To illustrate the use of this new genetic model, an upland cotton, Gossypium hirsusum L, CS line (CS-B25), TM-1 (the recurrent parent), five elite cultivars, and the F(2) hybrids from test-crossing these two lines with the five elite cultivars were grown in two environments in Mississippi. Agronomic and fiber data were collected and analyzed. The results showed that the CS line, CS-B25, which has chromosome 25 from line 3 to 79, Gossypium barbadense substituted into TM-1, had positive genetic associations with several fiber traits. We also determined that Chromosome 25 from FiberMax 966 had significantly positive associations with fiber length and strength; whereas, chromosome 25 from TM-1 and SureGrow 747 had detectable negative genetic effects on fiber strength. The new model will be useful to determine effects of the chromosomes of interest in various inbred lines in any diploid or amphidiploid crop for which CS lines are available.
机译:在作物育种改良计划中使用染色体替代(CS)品系时,需要将替代染色体的效果与其余染色体分开。传统的加性优势(AD)模型无法做到这一点,在传统的加性优势模型中,使用CS系,轮回亲本及其杂种。在这项研究中,我们开发了一种新的遗传模型和软件,称为具有基因型x环境相互作用的改良型AD模型,该模型可以预测归因于CS系中被替换的外来染色体的加性和优势遗传效应,以及未取代的染色体。另外,该模型将预测自交系中相同目的染色体(即本研究中棉花的25号染色体)的加性和优势效应,以及自交系中其余染色体的效应。该模型需要CS品系,其轮回亲本以及它们在替代品系和几个自交系之间的F(1)和/或F(2)杂种。蒙特卡罗模拟结果表明,当我们将此修改后的AD模型视为随机模型时,估计遗传方差分量时没有或有轻微偏差。由于感兴趣的染色体导致的预测效果和真实效果之间的相关系数从零到大于0.90变化,并且相对于CS线和循环线之间的差异呈正相关。为了说明这种新的遗传模型的使用,一种陆地棉,陆地棉L,CS系(CS-B25),TM-1(轮回亲本),五个优良品种和来自试验杂交的F(2)杂种这两个带有五个优良品种的品系在密西西比州的两个环境中生长。收集和分析农艺和纤维数据。结果表明,CS系CS-B25在第3到第79染色体上具有25号染色体,将棉被替换成TM-1,与几种纤维性状具有正向遗传关联。我们还确定,来自FiberMax 966的25号染色体与纤维长度和强度具有显着的正相关关系。相反,TM-1和SureGrow 747的25号染色体对纤维强度具有可检测到的负面遗传影响。新模型将有助于确定感兴趣的染色体在任何具有CS系的二倍体或两性类作物中的各种近交系中的作用。

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