Co-Innovation Center for Sustainable Forestry in Southern China, Nanjing Forestry University, Nanjing 210037, China.
Shenzhen Branch, Guangdong Laboratory of Lingnan Modern Agriculture, Genome Analysis Laboratory of the Ministry of Agriculture and Rural Affairs, Agricultural Genomics Institute at Shenzhen, Chinese Academy of Agricultural Sciences, Shenzhen 518120, China.
Int J Mol Sci. 2021 Sep 19;22(18):10128. doi: 10.3390/ijms221810128.
MADS-box transcription factors (TFs) have fundamental roles in regulating floral organ formation and flowering time in flowering plants. In order to understand the function of MIKC-type MADS-box family genes in (Batal.) Iljinskaja, we first implemented a genome-wide analysis of MIKC-type MADS-box genes in . Here, the phylogenetic relationships, chromosome location, conserved motif, gene structure, promoter region, and gene expression profile were analyzed. The results showed that 45 MIKC-type MADS-box were divided into 14 subfamilies: BS (3), AGL12 (1), AP3-PI (3), MIKC* (3), AGL15 (3), SVP (5), AGL17 (2), AG (3), TM8 (1), AGL6 (2), SEP (5), AP1-FUL (6), SOC1 (7), and FLC (1). The 43 MIKC-type MADS-box genes were distributed unevenly in 14 chromosomes, but two members were mapped on unanchored scaffolds. Gene structures were varied in the same gene family or subfamily, but conserved motifs shared similar distributions and sequences. The element analysis in promoters' regions revealed that MIKC-type MADS-box family genes were associated with light, phytohormone, and temperature responsiveness, which may play important roles in floral development and differentiation. The expression profile showed that most MIKC-type MADS-box genes were differentially expressed in six tissues (specifically expressed in floral buds), and the expression patterns were also visibly varied in the same subfamily. and , belonging to AP3-PI and SEP subfamilies, exhibited the high expression levels in PA-M and PG-F, respectively, indicating their functions in presenting heterodichogamy. We further verified the MIKC-type MADS-box gene expression levels on the basis of transcriptome and qRT-PCR analysis. This study would provide a theoretical basis for classification, cloning, and regulation of flowering mechanism of MIKC-type MADS-box genes in .
MADS 盒转录因子(TFs)在调控开花植物的花器官形成和开花时间方面具有重要作用。为了了解 MIKC 型 MADS 盒家族基因在(Batal.)Iljinskaja 中的功能,我们首先对其进行了全基因组分析。在这里,分析了 MIKC 型 MADS 盒基因的系统发育关系、染色体定位、保守基序、基因结构、启动子区和基因表达谱。结果表明,45 个 MIKC 型 MADS 盒被分为 14 个亚家族:BS(3)、AGL12(1)、AP3-PI(3)、MIKC*(3)、AGL15(3)、SVP(5)、AGL17(2)、AG(3)、TM8(1)、AGL6(2)、SEP(5)、AP1-FUL(6)、SOC1(7)和 FLC(1)。43 个 MIKC 型 MADS 盒基因在 14 条染色体上不均匀分布,但有两个成员定位在未锚定的支架上。同一基因家族或亚家族的基因结构变化很大,但保守基序具有相似的分布和序列。启动子区的元件分析表明,MIKC 型 MADS 盒家族基因与光、植物激素和温度反应有关,可能在花发育和分化中起重要作用。表达谱显示,大多数 MIKC 型 MADS 盒基因在 6 种组织(特异表达于花芽)中差异表达,同一亚家族的表达模式也明显不同。和,分别属于 AP3-PI 和 SEP 亚家族,在 PA-M 和 PG-F 中表现出高表达水平,表明它们在呈现异交方面的功能。我们进一步基于转录组和 qRT-PCR 分析验证了 MIKC 型 MADS 盒基因的表达水平。本研究为 MIKC 型 MADS 盒基因在中的分类、克隆和开花机制调控提供了理论依据。