首页> 外文期刊>Frontiers in Plant Science >The Terpene Synthase Gene Family of Carrot ( Daucus carota L.): Identification of QTLs and Candidate Genes Associated with Terpenoid Volatile Compounds
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The Terpene Synthase Gene Family of Carrot ( Daucus carota L.): Identification of QTLs and Candidate Genes Associated with Terpenoid Volatile Compounds

机译:胡萝卜的萜烯合酶基因家族( Daucus carota L。):与萜类挥发性化合物相关的QTL和候选基因的鉴定

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Terpenes are an important group of secondary metabolites in carrots influencing taste and flavor, and some of them might also play a role as bioactive substances with an impact on human physiology and health. Understanding the genetic and molecular basis of terpene synthases (TPS) involved in the biosynthesis of volatile terpenoids will provide insights for improving breeding strategies aimed at quality traits and for developing specific carrot chemotypes possibly useful for pharmaceutical applications. Hence, a combination of terpene metabolite profiling, genotyping-by-sequencing (GBS), and genome-wide association study (GWAS) was used in this work to get insights into the genetic control of terpene biosynthesis in carrots and to identify several TPS candidate genes that might be involved in the production of specific monoterpenes. In a panel of 85 carrot cultivars and accessions, metabolite profiling was used to identify 31 terpenoid volatile organic compounds (VOCs) in carrot leaves and roots, and a GBS approach was used to provide dense genome-wide marker coverage (>168,000 SNPs). Based on this data, a total of 30 quantitative trait loci (QTLs) was identified for 15 terpenoid volatiles. Most QTLs were detected for the monoterpene compounds ocimene, sabinene, β-pinene, borneol and bornyl acetate. We identified four genomic regions on three different carrot chromosomes by GWAS which are both associated with high significance (LOD ≥ 5.91) to distinct monoterpenes and to TPS candidate genes, which have been identified by homology-based gene prediction utilizing RNA-seq data. In total, 65 TPS candidate gene models in carrot were identified and assigned to known plant TPS subfamilies with the exception of TPS-d and TPS-h. TPS-b was identified as largest subfamily with 32 TPS candidate genes.
机译:萜烯是胡萝卜中影响味道和风味的重要次生代谢物,其中一些还可能作为生物活性物质发挥作用,对人体生理和健康产生影响。了解参与挥发性萜类化合物生物合成的萜烯合酶(TPS)的遗传和分子基础,将为改进针对品质性状的育种策略以及开发可能对制药应用有用的特定胡萝卜化学型提供见解。因此,这项工作中使用了萜烯代谢物谱,测序基因分型(GBS)和全基因组关联研究(GWAS)的组合,以深入了解胡萝卜中萜烯生物合成的遗传控制,并确定了几种TPS候选物可能与特定单萜的产生有关的基因。在一个由85个胡萝卜品种和品系组成的小组中,代谢物谱用于鉴定胡萝卜叶和根中的31种萜类挥发性有机化合物(VOC),GBS方法用于提供全基因组范围的密集标记覆盖(> 168,000 SNP)。基于此数据,共鉴定出15种萜类挥发物的30个定量性状位点(QTL)。检测到大多数QTL,包括单萜烯化合物ocimene,sa香烯,β-pine烯,冰片和乙酸冰片酯。我们通过GWAS鉴定了三个不同胡萝卜染色体上的四个基因组区域,这两个区域对不同的单萜和TPS候选基因均具有高显着性(LOD≥5.91),这已通过利用RNA-seq数据进行基于同源性的基因预测来确定。总共确定了胡萝卜中的65种TPS候选基因模型,并将其分配给已知的植物TPS亚家族,除了TPS-d和TPS-h。 TPS-b被鉴定为具有32个TPS候选基因的最大亚科。

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