Wang Xiaohan, Yoo Eunae, Lee Seungbum, Cho Gyu-Taek, Lee Gi-An, Yi Jung Yoon, Du Xiaoxuan, Han Seahee, Hyun Do Yoon, Ro Nayoung, Kim Kyung-Min
National Agrobiodiversity Center, National Institute of Agricultural Sciences, Rural Development Administration, Jeonju, South Korea.
Department of Applied Biosciences, Graduate School, Kyungpook National University, Daegu, South Korea.
Front Plant Sci. 2022 Oct 6;13:984825. doi: 10.3389/fpls.2022.984825. eCollection 2022.
Rapid changes in agricultural environments caused by global warming pose a major challenge to food production and safety. Common wheat () is a hexaploid plant (AABBDD) that shares large numbers of quantitative traits and resistance genes with B and D genomes of species, which are responsible for several metabolic functions and biosynthetic processes, particularly in plant adaptation to biotic as well as abiotic stresses. Comparatively, the abundance of the gene pool is much higher than that of . Therefore, we used four universal DNA barcodes for plants (ITS2, K, L, and MN) to construct a phylogenetic tree to classify the genus . Fourteen species were distinguished among a total of 17 representative species. , , and could not be grouped into any of the clusters in the phylogenetic tree, indicating that these three species could not be distinguished by four DNA barcodes. Therefore, from 2408 SNPs obtained using genotyping by sequencing (GBS), we manually screened 30 SNPs that could be potentially used to classify these three species. The results of gene flow and genetic differentiation index (Fst) showed that the genetic differentiation among the three species was small, and there was bidirectional horizontal gene transfer between the three species, which was consistent with our results that the three species were difficult to classify by DNA barcode.
全球变暖导致农业环境迅速变化,这对粮食生产和安全构成了重大挑战。普通小麦()是一种六倍体植物(AABBDD),与物种的B和D基因组共享大量数量性状和抗性基因,这些基因负责多种代谢功能和生物合成过程,特别是在植物适应生物和非生物胁迫方面。相比之下,基因库的丰度远高于。因此,我们使用四种植物通用DNA条形码(ITS2、K、L和MN)构建系统发育树来对属进行分类。在总共17个代表性物种中区分出了14个物种。、和无法归入系统发育树中的任何一个聚类,这表明这三个物种无法通过四种DNA条形码区分。因此,从通过测序基因分型(GBS)获得的2408个单核苷酸多态性(SNP)中,我们手动筛选出了30个可能用于对这三个物种进行分类的SNP。基因流和遗传分化指数(Fst)的结果表明,这三个物种之间的遗传分化较小,并且这三个物种之间存在双向水平基因转移,这与我们关于这三个物种难以通过DNA条形码分类的结果一致。