生物
花青素
MYB公司
类黄酮生物合成
转录组
非生物成分
拟南芥
小RNA
植物
代谢组学
基因
转基因作物
黄酮醇
转录因子
小RNA
转基因
类黄酮
生物化学
基因表达
生物信息学
古生物学
突变体
抗氧化剂
作者
Yamei Wang,Wenwen Liu,Xinwei Wang,Ruijuan Yang,Zhenying Wu,Han Wang,Lei Wang,Zhubing Hu,Siyi Guo,Hailing Zhang,Jinxing Lin,Chunxiang Fu
标识
DOI:10.1038/s41438-020-00341-w
摘要
Anthocyanins biosynthesized from the flavonoid pathway are types of pigments that are involved in the protection of poplar from biotic and abiotic stresses. Previous researchers studying anthocyanin-related transcription factors and structural genes in poplar have made significant discoveries. However, little is known about the regulatory role of microRNAs in anthocyanin biosynthesis in poplar. Here, we overexpressed miR156 in poplar to study the comprehensive effects of the miR156-SPL module on the biosynthesis of anthocyanins. Small RNA sequencing analysis revealed 228 microRNAs differentially expressed in transgenic poplar plants with dramatically increased miR156 levels. Furthermore, integrated microRNAomic and transcriptomic analysis suggested that two microRNAs, miR160h, and miR858, have the potential to affect anthocyanin accumulation in poplar by regulating auxin response factors and MYB transcription factors, respectively. Additionally, the accumulation of miR160h and miR858 displayed a positive correlation with miR156 levels, suggesting a possible interaction between the miR156-SPL module and these microRNAs in poplar. Last, metabolomics analysis revealed that the levels of anthocyanins, flavones, and flavonols were substantially elevated in transgenic poplar plants overexpressing miR156 compared with the wild type, whereas the total lignin content was reduced in the transgenic plants. Taken together, our results indicate that miR156 can fine tune the anthocyanin biosynthetic pathway via multiple factors, including microRNAs, transcription factors, and the levels of structural genes, in poplar. This provides additional clues for understanding the complex regulatory network of anthocyanin biosynthesis in woody plants.
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