Wageningen Seed Lab, Laboratory of Plant Physiology, Wageningen University, 6708 PB Wageningen, The Netherlands.
Plant Physiol. 2013 Jun;162(2):553-66. doi: 10.1104/pp.113.216176. Epub 2013 Apr 19.
A complex phenotype such as seed germination is the result of several genetic and environmental cues and requires the concerted action of many genes. The use of well-structured recombinant inbred lines in combination with "omics" analysis can help to disentangle the genetic basis of such quantitative traits. This so-called genetical genomics approach can effectively capture both genetic and epistatic interactions. However, to understand how the environment interacts with genomic-encoded information, a better understanding of the perception and processing of environmental signals is needed. In a classical genetical genomics setup, this requires replication of the whole experiment in different environmental conditions. A novel generalized setup overcomes this limitation and includes environmental perturbation within a single experimental design. We developed a dedicated quantitative trait loci mapping procedure to implement this approach and used existing phenotypical data to demonstrate its power. In addition, we studied the genetic regulation of primary metabolism in dry and imbibed Arabidopsis (Arabidopsis thaliana) seeds. In the metabolome, many changes were observed that were under both environmental and genetic controls and their interaction. This concept offers unique reduction of experimental load with minimal compromise of statistical power and is of great potential in the field of systems genetics, which requires a broad understanding of both plasticity and dynamic regulation.
一个复杂的表型,如种子萌发,是几个遗传和环境线索的结果,需要许多基因的协同作用。使用结构良好的重组近交系与“组学”分析相结合,可以帮助理清这种数量性状的遗传基础。这种所谓的遗传基因组学方法可以有效地捕捉遗传和上位性相互作用。然而,要了解环境如何与基因组编码信息相互作用,需要更好地理解环境信号的感知和处理。在经典的遗传基因组学设置中,这需要在不同的环境条件下复制整个实验。一种新颖的广义设置克服了这一限制,并在单个实验设计中包含了环境干扰。我们开发了一种专门的数量性状位点映射程序来实现这一方法,并利用现有的表型数据来证明其有效性。此外,我们研究了拟南芥(Arabidopsis thaliana)干种子和吸胀种子中初级代谢的遗传调控。在代谢组学中,观察到许多变化,这些变化受到环境和遗传控制及其相互作用的影响。这个概念提供了一种独特的实验负荷减少方法,同时最小化了统计能力的损失,在系统遗传学领域具有很大的潜力,系统遗传学需要对可塑性和动态调节有广泛的理解。