State Key Laboratory of Grassland Agro-Ecosystems, Key Laboratory of Grassland Livestock Industry Innovation, Ministry of Agriculture and Rural Affairs, College of Pastoral Agriculture Science and Technology, Lanzhou University, Lanzhou 730020, China.
Int J Mol Sci. 2022 Jul 3;23(13):7403. doi: 10.3390/ijms23137403.
The GRAS gene family is a plant-specific family of transcription factors, which play an important role in many metabolic pathways, such as plant growth and development and stress response. However, there is no report on the comprehensive study of the GRAS gene family of . Here, we identified 55 genes, which were classified into 8 subfamilies by phylogenetic analysis, and unevenly distributed on 8 chromosomes. The structural analysis indicated that 87% of genes have no intron, which is highly conservative in different species. MaGRAS proteins of the same subfamily have similar protein motifs, which are the source of functional differences of different genomes. Transcriptome and qRT-PCR data were combined to determine the expression of 12 genes in 6 tissues, including flower, seed, leaf, stem, root and nodule, which indicated the possible roles in plant growth and development. Five and seven genes were upregulated under ABA, drought, and salt stress treatments in the roots and shoots, respectively, indicating that they play vital roles in the response to ABA and abiotic stresses in . Furthermore, in yeast heterologous expression, , and can enhance the drought or salt tolerance of yeast cells. Taken together, these results provide basic information for understanding the underlying molecular mechanisms of GRAS proteins and valuable information for further studies on the growth, development and stress responses of GRAS proteins in .
GRAS 基因家族是一类植物特有的转录因子家族,在植物的生长发育和逆境响应等许多代谢途径中发挥着重要作用。然而,目前还没有关于. 的 GRAS 基因家族的全面研究报道。在这里,我们鉴定了 55 个基因,通过系统发生分析将其分为 8 个亚家族,并不均匀分布在 8 条染色体上。结构分析表明,87%的 基因没有内含子,在不同物种中高度保守。同一亚家族的 MaGRAS 蛋白具有相似的蛋白结构域,这是不同基因组功能差异的来源。结合转录组和 qRT-PCR 数据,我们在 6 种组织(花、种子、叶、茎、根和根瘤)中确定了 12 个基因的表达情况,表明它们可能在植物生长发育中发挥作用。在根和地上部分分别受到 ABA、干旱和盐胁迫处理时,有 5 个和 7 个 基因上调表达,表明它们在 对 ABA 和非生物胁迫的响应中发挥着重要作用。此外,在酵母异源表达中, 、 和 可以增强酵母细胞的干旱或盐耐受性。综上所述,这些结果为理解 GRAS 蛋白的潜在分子机制提供了基础信息,并为进一步研究 中 GRAS 蛋白的生长、发育和应激响应提供了有价值的信息。