Department of Plant and Environmental Sciences, Weizmann Institute of Science, Rehovot, Israel.
Department of Molecular Genetics, The Leibniz Institute of Plant Genetics and Crop Plant Research (IPK) in Gatersleben, Seeland, OT Gatersleben, Germany.
Nat Genet. 2020 Oct;52(10):1111-1121. doi: 10.1038/s41588-020-0690-6. Epub 2020 Sep 28.
Wild tomato species represent a rich gene pool for numerous desirable traits lost during domestication. Here, we exploited an introgression population representing wild desert-adapted species and a domesticated cultivar to establish the genetic basis of gene expression and chemical variation accompanying the transfer of wild-species-associated fruit traits. Transcriptome and metabolome analysis of 580 lines coupled to pathogen sensitivity assays resulted in the identification of genomic loci associated with levels of hundreds of transcripts and metabolites. These associations occurred in hotspots representing coordinated perturbation of metabolic pathways and ripening-related processes. Here, we identify components of the Solanum alkaloid pathway, as well as genes and metabolites involved in pathogen defense and linking fungal resistance with changes in the fruit ripening regulatory network. Our results outline a framework for understanding metabolism and pathogen resistance during tomato fruit ripening and provide insights into key fruit quality traits.
野生番茄物种代表了一个丰富的基因库,其中包含了在驯化过程中丢失的许多理想性状。在这里,我们利用一个代表野生沙漠适应物种和驯化栽培品种的渐渗群体,来确定伴随野生物种相关果实性状转移的基因表达和化学变异的遗传基础。对 580 条系的转录组和代谢组分析,结合病原体敏感性测定,确定了与数百个转录本和代谢物水平相关的基因组位点。这些关联发生在热点区域,代表了代谢途径和成熟相关过程的协调干扰。在这里,我们确定了茄碱途径的组成部分,以及参与病原体防御和将真菌抗性与果实成熟调控网络变化联系起来的基因和代谢物。我们的研究结果为理解番茄果实成熟过程中的代谢和病原体抗性提供了一个框架,并为关键的果实品质性状提供了新的见解。