Kan Lei, Liao Qicong, Chen Zhipeng, Wang Shuyu, Ma Yifei, Su Zhiyao, Zhang Lu
College of Forestry and Landscape Architecture, South China Agricultural University, Guangzhou, China.
Front Plant Sci. 2021 Sep 30;12:731203. doi: 10.3389/fpls.2021.731203. eCollection 2021.
The wild population of (Dubard) H. J. Lam is currently dwindling; its understory seedlings are rare, and there is a lack of molecular studies, which impedes the conservation of this species. This study exploited second-generation sequencing and widely targeted metabolomics analysis to uncover the dynamic changes in differentially expressed genes (DEGs) and differentially accumulated metabolites (DAMs) in five post-germination stages of whole organism. Notably, the weighted gene co-expression network analysis (WGCNA), transcriptome, and metabolome association analyses all indicated significant enrichment of the flavonoid biosynthesis pathway in stage 4 (two-leaf), and an upregulation of the genes encoding flavonol biosynthesis in this stage. In stage 5 (nine-leaf), the flavonols were significantly accumulated, indicating that the changes in metabolites were driven at the transcript level. According to the significant changes in gene expression encoding auxin transport carriers and their correlation with flavonols during stage 5, the flavonols were speculated to have a direct inhibitory effect on the expression of PIN4 encoding gene, which may inhibit the process of polar auxin transport. The results provided important insights into the molecular network relationships between the transcription and metabolism of this rare and endangered species during the post-germination stages and explained the reasons for the slow growth of its seedlings at the molecular level.
(杜巴德)H. J. 林的野生种群目前正在减少;其林下幼苗稀少,且缺乏分子研究,这阻碍了该物种的保护。本研究利用二代测序和广泛靶向代谢组学分析,揭示了该物种全株萌发后五个阶段差异表达基因(DEGs)和差异积累代谢物(DAMs)的动态变化。值得注意的是,加权基因共表达网络分析(WGCNA)、转录组和代谢组关联分析均表明,在第4阶段(两叶期)黄酮类生物合成途径显著富集,且该阶段编码黄酮醇生物合成的基因上调。在第5阶段(九叶期),黄酮醇显著积累,表明代谢物的变化是由转录水平驱动的。根据第5阶段生长素运输载体编码基因表达的显著变化及其与黄酮醇的相关性,推测黄酮醇对PIN4编码基因的表达有直接抑制作用,这可能会抑制生长素的极性运输过程。研究结果为这种珍稀濒危物种萌发后阶段转录与代谢之间的分子网络关系提供了重要见解,并在分子水平上解释了其幼苗生长缓慢的原因。