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Transcriptomic and metabolic flux analyses reveal shift of metabolic patterns during rice grain development

转录组 系统生物学 焊剂(冶金) 生物 代谢通量分析 计算生物学 生物信息学 基因 化学 遗传学 新陈代谢 基因表达 生物化学 有机化学
作者
Fangzhou Shen,Xueting Wu,Luoxi Shi,Hang Zhang,Yangmin Chen,Xiaoquan Qi,Zhuo Wang,Xuan Li
出处
期刊:BMC Systems Biology [Springer Nature]
卷期号:12 (S4) 被引量:7
标识
DOI:10.1186/s12918-018-0574-x
摘要

Rice (Oryza sativa) is one of the most important grain crops, which serves as food source for nearly half of the world population. The study of rice development process as well as related strategies for production has made significant progress. However, the comprehensive study on development of different rice tissues at both transcriptomic and metabolic flux level across different stages was lacked.In this study, we performed RNA-Seq and characterized the expression profiles of differentiated tissues from Oryza sativa Zhonghua 11, including leaves, sheath, stamen, pistil, lemma and palea of the booting stage, and embryo, endosperm, lemma and palea of the mature grain stage. By integrating this set of transcriptome data of different rice tissues at different stages with a genome-scale rice metabolic model, we generated tissue-specific models and investigated the shift of metabolic patterns, and the discrepancy between transcriptomic and metabolic level. We found although the flux patterns are not very similar with the gene expression pattern, the tissues at booting stage and mature grain stage can be separately clustered by primary metabolism at either level. While the gene expression and flux distribution of secondary metabolism is more diverse across tissues and stages. The critical rate-limiting reactions and pathways were also identified. In addition, we compared the patterns of the same tissue at different stages and the different tissues at same stage. There are more altered pathways at gene expression level than metabolic level, which indicate the metabolism is more robust to reflect the phenotype, and might largely because of the complex post-transcriptional modification.The tissue-specific models revealed more detail metabolic pattern shift among different tissues and stages, which is of great significance to uncover mechanism of rice grain development and further improve production and quality of rice.
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