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利用外显子捕获测序数据进行的柳枝稷开花时间全基因组关联研究。

Genome-wide associations with flowering time in switchgrass using exome-capture sequencing data.

机构信息

US Dairy Forage Research Center, USDA-ARS, 1925 Linden Dr. W, Madison, WI, 53706, USA.

DuPont Pioneer, Johnston, IA, 50131, USA.

出版信息

New Phytol. 2017 Jan;213(1):154-169. doi: 10.1111/nph.14101. Epub 2016 Jul 22.

DOI:10.1111/nph.14101
PMID:27443672
Abstract

Flowering time is a major determinant of biomass yield in switchgrass (Panicum virgatum), a perennial bioenergy crop, because later flowering allows for an extended period of vegetative growth and increased biomass production. A better understanding of the genetic regulation of flowering time in switchgrass will aid the development of switchgrass varieties with increased biomass yields, particularly at northern latitudes, where late-flowering but southern-adapted varieties have high winter mortality. We use genotypes derived from recently published exome-capture sequencing, which mitigates challenges related to the large, highly repetitive and polyploid switchgrass genome, to perform genome-wide association studies (GWAS) using flowering time data from a switchgrass association panel in an effort to characterize the genetic architecture and genes underlying flowering time regulation in switchgrass. We identify associations with flowering time at multiple loci, including in a homolog of FLOWERING LOCUS T and in a locus containing TIMELESS, a homolog of a key circadian regulator in animals. Our results suggest that flowering time variation in switchgrass is due to variation at many positions across the genome. The relationship of flowering time and geographic origin indicates likely roles for genes in the photoperiod and autonomous pathways in generating switchgrass flowering time variation.

摘要

开花时间是柳枝稷(Panicum virgatum)生物量产量的主要决定因素,柳枝稷是一种多年生生物能源作物,因为晚开花可以延长营养生长时间,增加生物量产量。更好地了解柳枝稷开花时间的遗传调控将有助于开发具有更高生物量产量的柳枝稷品种,特别是在高纬度地区,那里的晚开花但适应南方的品种冬季死亡率很高。我们使用最近发表的外显子捕获测序产生的基因型,通过使用柳枝稷关联面板中的开花时间数据进行全基因组关联研究(GWAS),来缓解与柳枝稷大、高度重复和多倍体基因组相关的挑战,努力描述开花时间调控的遗传结构和基因在柳枝稷中。我们确定了与多个开花时间位点的关联,包括在 FLOWERING LOCUS T 的同源物中和包含 TIMELESS 的位点中,TIMELESS 是动物中关键生物钟调节剂的同源物。我们的结果表明,柳枝稷的开花时间变异是由于基因组中许多位置的变异所致。开花时间与地理起源的关系表明,光周期和自主途径中的基因可能在产生柳枝稷开花时间变异方面发挥作用。

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