Institute of Bast Fiber Crops, Chinese Academy of Agricultural Sciences, Changsha 410205, China; Department of Agronomy, Bayero University, Kano, PMB 3011, Kano, Nigeria.
Institute of Bast Fiber Crops, Chinese Academy of Agricultural Sciences, Changsha 410205, China.
Genomics. 2022 Mar;114(2):110275. doi: 10.1016/j.ygeno.2022.110275. Epub 2022 Jan 31.
MYB transcription factors are crucial in regulating stress tolerance and expression of major genes involved in flavonoid biosynthesis. The functions of MYBs is well explored in a number of plants, yet no study is reported in Apocynum venetum. We identified a total of 163 MYB candidates, that comprised of 101 (61.96%) R2R3, 6 3R, 1 4R and 55 1R. Syntenic analysis of A. venetum R2R3 (AvMYBs) showed highest orthologous pairs with Vitis vinifera MYBs followed by Arabidopsis thaliana among the four species evaluated. Thirty segmental duplications and 6 tandem duplications were obtained among AvMYB gene pairs signifying their role in the MYB gene family expansion. Nucleotide substitution analysis (Ka/Ks) showed the AvMYBs to be under the influence of strong purifying selection. Expression analysis of selected AvMYBs under low temperature and cadmium stresses resulted in the identification of AvMYB48, AvMYB97, AvMYB8, AvMYB4 as potential stress responsive genes and AvMYB10 and AvMYB11 in addition, proanthocyanidin biosynthesis regulatory genes which is consistent with their annotated homologues in Arabidopsis. Tissue specific expression profile analysis of the AvMYBs further supported the qPCR analysis result. MYBs with higher transcript levels in root, stem and leaf like AvMYB4 for example, was downregulated under the stresses and such with low transcript level such as AvMYB48 which had low transcript in the leaf was upregulated under both stresses. Transcriptome and phylogenetic analyses suggested AvMYB42 as a potential regulator of anthocyanin biosynthesis. Thus, this study provided valuable information on AvR2R3-MYB gene family with respect to stress tolerance and flavonoid biosynthesis.
MYB 转录因子在调节应激耐受和参与类黄酮生物合成的主要基因表达方面起着至关重要的作用。在许多植物中,MYB 的功能已经得到了很好的研究,但在罗布麻中没有报道。我们总共鉴定了 163 个 MYB 候选物,其中包括 101 个(61.96%)R2R3、6 个 3R、1 个 4R 和 55 个 1R。对 A. venetum R2R3(AvMYBs)的共线性分析表明,在所评估的四个物种中,与葡萄的 MYB 具有最高的同源对,其次是拟南芥。在 AvMYB 基因对中获得了 30 个片段重复和 6 个串联重复,表明它们在 MYB 基因家族扩张中发挥作用。核苷酸取代分析(Ka/Ks)表明,AvMYBs 受到强烈的纯化选择的影响。在低温和镉胁迫下对选定的 AvMYBs 进行表达分析,鉴定出 AvMYB48、AvMYB97、AvMYB8、AvMYB4 为潜在的应激响应基因,此外,还鉴定出 AvMYB10 和 AvMYB11 为原花青素生物合成调控基因,与拟南芥的同源物一致。AvMYBs 的组织特异性表达谱分析进一步支持了 qPCR 分析结果。例如,像 AvMYB4 这样在根、茎和叶中具有较高转录水平的 MYBs 在胁迫下下调,而像 AvMYB48 这样在叶中具有低转录水平的 MYBs 在两种胁迫下上调。转录组和系统发育分析表明,AvMYB42 可能是花青素生物合成的潜在调控因子。因此,这项研究为罗布麻的 AvR2R3-MYB 基因家族在应激耐受和类黄酮生物合成方面提供了有价值的信息。