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The quantitative-genetic and QTL architecture of trait integration and modularity in Brassica rapa across simulated seasonal settings

机译:整个模拟季节环境下甘蓝型油菜性状整合和模块化的数量遗传和QTL结构

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摘要

Within organisms, groups of traits with different functions are frequently modular, such that variation among modules is independent and variation within modules is tightly integrated, or correlated. Here, we investigated patterns of trait integration and modularity in Brassica rapa in response to three simulated seasonal temperature/photoperiod conditions. The goals of this research were to use trait correlations to understand patterns of trait integration and modularity within and among floral, vegetative and phenological traits of B. rapa in each of three treatments, to examine the QTL architecture underlying patterns of trait integration and modularity, and to quantify how variation in temperature and photoperiod affects the correlation structure and QTL architecture of traits. All floral organs of B. rapa were strongly correlated, and contrary to expectations, floral and vegetative traits were also correlated. Extensive QTL co-localization suggests that covariation of these traits is likely due to pleiotropy, although physically linked loci that independently affect individual traits cannot be ruled out. Across treatments, the structure of genotypic and QTL correlations was generally conserved. Any observed variation in genetic architecture arose from genotype × environment interactions (GEIs) and attendant QTL × E in response to temperature but not photoperiod.
机译:在生物体内,具有不同功能的性状组通常是模块化的,因此模块之间的变异是独立的,模块内的变异紧密集成或相关。在这里,我们调查了三个模拟的季节性温度/光照条件下甘蓝型油菜的性状整合和模块性模式。这项研究的目的是利用性状相关性来了解三种处理中每一种的B. rapa花,营养和物候性状内部及其之间的性状整合和模块性模式,以研究构成性状整合和模块性模式的QTL体系,并量化温度和光周期的变化如何影响性状的相关结构和QTL结构。 B. rapa的所有花器官都高度相关,与预期相反,花和营养性状也都相关。虽然不能排除独立影响个体性状的物理连锁基因座,但广泛的QTL共定位表明这些性状的共变可能是由于多效性引起的。在所有治疗中,基因型和QTL相关性的结构通常被保留。基因结构×环境相互作用(GEIs)和伴随的QTL×E响应温度而不是光周期,可观察到遗传结构的任何变化。

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