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Gene action of canopy temperature in bread wheat under diverse environments

机译:不同环境下面包小麦冠层温度的基因作用

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While canopy temperature (CT) shows a strong and reliable association with yield under drought and heat stress and is used in wheat breeding to select for yield, little is known of its genetic control. The objective of this study was to determine the gene action controlling CT in five wheat populations grown in diverse environments (heat, drought, and well-irrigated conditions). CT showed negative phenotypic correlations with grain yield under drought and well-irrigated environments. Additive c additive effects were most prevalent and significant for all crosses and environments. Dominance and dominance c dominance gene actions were also found, though the significance and direction was specific for each environment and genotypic cross. The use of CT as a selection criterion to improve tolerance to drought was supported by its significant association with grain yield and the genotype differences observed between cultivars. Our results indicated that genetic gains for CT in wheat could be achieved through conventional breeding. However, given some dominance and epistatic effects, it would be necessary to delay the selection process until the frequency of heterozygous loci within families is reduced.
机译:尽管在干旱和高温胁迫下,冠层温度(CT)与产量有很强的关系,可用于小麦育种以选择产量,但对其遗传控制知之甚少。本研究的目的是确定在不同环境(高温,干旱和灌溉条件良好)下生长的五个小麦群体中控制CT的基因作用。在干旱和灌溉条件良好的条件下,CT显示与谷物产量呈负相关。加性c加性效应在所有杂交和环境中最为普遍和显着。尽管每个环境和基因型杂交的意义和方向都是特定的,但也发现了优势和优势c优势基因的作用。它与谷物产量的显着相关以及不同品种之间观察到的基因型差异,为将CT作为提高耐旱性的选择标准提供了支持。我们的结果表明,通过常规育种可以实现小麦CT的遗传增益。但是,鉴于某些优势和上位性效应,有必要延迟选择过程,直到减少家庭中杂合基因座的频率。

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