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Ribosome footprint profiling enables elucidating the systemic regulation of fatty acid accumulation in Acer truncatum

核糖体分析 生物 蛋白质组 计算生物学 MYB公司 基因 拟南芥 平动调节 核糖体 翻译(生物学) 脂质代谢 遗传学 细胞生物学 生物化学 信使核糖核酸 核糖核酸 转录因子 突变体
作者
Qiuyue Ma,Yuxiao Wang,Shushun Li,Jing Wen,Li Zhu,Kunyuan Yan,Yiming Du,Shuxian Li,Liping Yan,Zijian Xie,Yunzhou Lyu,Fei Shen,Qian‐Zhong Li
出处
期刊:BMC Biology [Springer Nature]
卷期号:21 (1) 被引量:1
标识
DOI:10.1186/s12915-023-01564-8
摘要

Abstract Background The accumulation of fatty acids in plants covers a wide range of functions in plant physiology and thereby affects adaptations and characteristics of species. As the famous woody oilseed crop, Acer truncatum accumulates unsaturated fatty acids and could serve as the model to understand the regulation and trait formation in oil-accumulation crops. Here, we performed Ribosome footprint profiling combing with a multi-omics strategy towards vital time points during seed development, and finally constructed systematic profiling from transcription to proteomes. Additionally, we characterized the small open reading frames (ORFs) and revealed that the translational efficiencies of focused genes were highly influenced by their sequence features. Results The comprehensive multi-omics analysis of lipid metabolism was conducted in A. truncatum. We applied the Ribo-seq and RNA-seq techniques, and the analyses of transcriptional and translational profiles of seeds collected at 85 and 115 DAF were compared. Key members of biosynthesis-related structural genes (LACS , FAD2 , FAD3 , and KCS ) were characterized fully. More meaningfully, the regulators ( MYB , ABI , bZIP , and Dof ) were identified and revealed to affect lipid biosynthesis via post-translational regulations. The translational features results showed that translation efficiency tended to be lower for the genes with a translated uORF than for the genes with a non-translated uORF. They provide new insights into the global mechanisms underlying the developmental regulation of lipid metabolism. Conclusions We performed Ribosome footprint profiling combing with a multi-omics strategy in A. truncatum seed development, which provides an example of the use of Ribosome footprint profiling in deciphering the complex regulation network and will be useful for elucidating the metabolism of A. truncatum seed oil and the regulatory mechanisms.
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