State Key Laboratory of Crop Stress Biology in Arid Areas, College of Horticulture, Northwest A&F University, Yangling, Xianyang 712100, China.
Key Laboratory of Horticultural Plant Biology and Germplasm Innovation in Northwest China, Ministry of Agriculture, Northwest A&F University, Yangling, Xianyang 712100, China.
Int J Mol Sci. 2019 Sep 14;20(18):4553. doi: 10.3390/ijms20184553.
Members of the plant-specific B3-domain transcription factor family have important and varied functions, especially with respect to vegetative and reproductive growth. Although B3 genes have been studied in many other plants, there is limited information on the genomic organization and expression of B3 genes in grapevine ( L.). In this study, we identified 50 B3 genes in the grapevine genome and analyzed these genes in terms of chromosomal location and syntenic relationships, intron-exon organization, and promoter element content. We also analyzed the presumed proteins in terms of domain structure and phylogenetic relationships. Based on the results, we classified these genes into five subfamilies. The syntenic relationships suggest that approximately half of the genes resulted from genome duplication, contributing to the expansion of the B3 family in grapevine. The analysis of element composition suggested that most of these genes may function in response to hormones, light, and stress. We also analyzed expression of members of the B3 family in various structures of grapevine plants, including the seed during seed development. Many B3 genes were expressed preferentially in one or more structures of the developed plant, suggesting specific roles in growth and development. Furthermore, several of the genes were expressed differentially in early developing seeds from representative seeded and seedless cultivars, suggesting a role in seed development or abortion. The results of this study provide a foundation for functional analysis of B3 genes and new resources for future molecular breeding of grapevine.
植物特异性 B3 结构域转录因子家族的成员具有重要且多样的功能,特别是在营养生长和生殖生长方面。尽管在许多其他植物中已经研究了 B3 基因,但关于葡萄(L.)B3 基因的基因组组织和表达的信息有限。在这项研究中,我们在葡萄基因组中鉴定了 50 个 B3 基因,并从染色体定位和共线性关系、内含子-外显子组织以及启动子元件含量等方面对这些基因进行了分析。我们还根据结构域结构和系统发育关系分析了假定的蛋白质。根据结果,我们将这些基因分为五个亚家族。共线性关系表明,大约一半的基因是由于基因组加倍产生的,这有助于葡萄 B3 家族的扩张。元件组成分析表明,这些基因中的大多数可能在激素、光照和胁迫反应中发挥作用。我们还分析了 B3 家族成员在葡萄植物各种结构中的表达,包括种子在种子发育过程中的表达。许多 B3 基因在发育植物的一个或多个结构中优先表达,这表明它们在生长和发育中具有特定的作用。此外,一些基因在有籽和无籽品种的早期发育种子中表达存在差异,这表明它们在种子发育或败育中发挥作用。这项研究的结果为 B3 基因的功能分析提供了基础,并为未来葡萄的分子育种提供了新的资源。