School of Agronomy, Anhui Agricultural University, Hefei, 230036, China.
School of Agriculture, Food and Wine, Waite Research Institute, University of Adelaide, Adelaide, SA, 5064, Australia.
Sci Rep. 2022 Mar 24;12(1):5063. doi: 10.1038/s41598-022-08983-7.
BAHD superfamily acyltransferases play an important role in catalyzing and regulating secondary metabolism in plants. Despite this, there is relatively little information regarding the BAHD superfamily in barley. In this study, we identified 116 HvBAHD acyltransferases from the barley genome. Based on phylogenetic analysis and classification in model monocotyledonous and dicotyledonous plants, we divided the genes into eight groups, I-a, I-b, II, III-a, III-b, IV, V-a and V-b. The Clade IV genes, including Agmatine Coumarol Transferase (ACT) that is associated with resistance of plants to Gibberella fungi, were absent in Arabidopsis. Cis-regulatory element analysis of the HvBAHDs showed that the genes respond positively to GA3 treatment. In-silico expression and qPCR analysis showed the HvBAHD genes are expressed in a range of tissues and developmental stages, and highly enriched in the seedling stage, consistent with diverse roles. Single nucleotide polymorphism (SNP) scanning analysis revealed that the natural variation in the coding regions of the HvBAHDs is low and the sequences have been conserved during barley domestication. Our results reveal the complexity of the HvBAHDs and will help facilitate their analysis in further studies.
BAHD 超家族酰基转移酶在催化和调节植物次生代谢中起着重要作用。尽管如此,关于大麦中的 BAHD 超家族的信息相对较少。在这项研究中,我们从大麦基因组中鉴定出 116 个 HvBAHD 酰基转移酶。基于系统发育分析和模式单子叶和双子叶植物的分类,我们将基因分为八个组,I-a、I-b、II、III-a、III-b、IV、V-a 和 V-b。包括与植物对镰刀菌真菌抗性相关的胍丁胺肉桂醇转移酶 (ACT) 的 Clade IV 基因,在拟南芥中不存在。HvBAHD 的顺式调控元件分析表明,这些基因对 GA3 处理有正向反应。计算机表达和 qPCR 分析表明,HvBAHD 基因在多种组织和发育阶段表达,并在幼苗阶段高度富集,这与它们的多种功能一致。单核苷酸多态性 (SNP) 扫描分析表明,HvBAHD 编码区的自然变异较低,并且在大麦驯化过程中序列得到了保守。我们的研究结果揭示了 HvBAHD 的复杂性,并将有助于在进一步研究中对其进行分析。