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在拟南芥木质部导管细胞分化过程中,碳流从初级代谢向次级代谢转移。

The Carbon Flow Shifts from Primary to Secondary Metabolism during Xylem Vessel Cell Differentiation in Arabidopsis thaliana.

机构信息

Department of Integrated Biosciences, Graduate School of Frontier Sciences, The University of Tokyo, 5-1-5, Kashiwanoha, Kashiwa, Chiba, 277-8562 Japan.

Graduate School of Science, Technology and Innovation, Kobe University, 1-1 Rokkodai, Nada, Kobe, Hyogo, 657-8501 Japan.

出版信息

Plant Cell Physiol. 2023 Dec 21;64(12):1563-1575. doi: 10.1093/pcp/pcad130.

Abstract

Xylem vessel cell differentiation is characterized by the deposition of a secondary cell wall (SCW) containing cellulose, hemicellulose and lignin. VASCULAR-RELATED NAC-DOMAIN7 (VND7), a plant-specific NAC (NAM, ATAF1/2, and CUC2) transcription factor, is a master regulator of xylem vessel cell differentiation in Arabidopsis (Arabidopsis thaliana). Previous metabolome analysis using the VND7-inducible system in tobacco BY-2 cells successfully revealed significant quantitative changes in primary metabolites during xylem vessel cell differentiation. However, the flow of primary metabolites is not yet well understood. Here, we performed a metabolomic analysis of VND7-inducible Arabidopsis T87 suspension cells. Capillary electrophoresis-time-of-flight mass spectrometry quantified 57 metabolites, and subsequent data analysis highlighted active changes in the levels of UDP-glucose and phenylalanine, which are building blocks of cellulose and lignin, respectively. In a metabolic flow analysis using stable carbon 13 (13C) isotope, the 13C-labeling ratio specifically increased in 3-phosphoglycerate after 12 h of VND7 induction, followed by an increase in shikimate after 24 h of induction, while the inflow of 13C into lactate from pyruvate was significantly inhibited, indicating an active shift of carbon flow from glycolysis to the shikimate pathway during xylem vessel cell differentiation. In support of this notion, most glycolytic genes involved in the downstream of glyceraldehyde 3-phosphate were downregulated following the induction of xylem vessel cell differentiation, whereas genes for the shikimate pathway and phenylalanine biosynthesis were upregulated. These findings provide evidence for the active shift of carbon flow from primary metabolic pathways to the SCW polymer biosynthetic pathway at specific points during xylem vessel cell differentiation.

摘要

木质部导管细胞分化的特征是沉积含有纤维素、半纤维素和木质素的次生细胞壁 (SCW)。VASCULAR-RELATED NAC-DOMAIN7 (VND7),一种植物特异性 NAC (NAM、ATAF1/2 和 CUC2) 转录因子,是拟南芥 (Arabidopsis thaliana) 木质部导管细胞分化的主要调节因子。先前使用烟草 BY-2 细胞中的 VND7 诱导系统进行的代谢组学分析成功揭示了木质部导管细胞分化过程中主要代谢物的显著定量变化。然而,初级代谢物的流动尚不清楚。在这里,我们对 VND7 诱导的拟南芥 T87 悬浮细胞进行了代谢组学分析。毛细管电泳-飞行时间质谱定量了 57 种代谢物,随后的数据分析突出了 UDP-葡萄糖和苯丙氨酸水平的活跃变化,它们分别是纤维素和木质素的构建块。在使用稳定碳 13 (13C) 同位素的代谢流分析中,VND7 诱导 12 小时后,3-磷酸甘油酸的 13C 标记比 specifically 增加,随后诱导 24 小时后,莽草酸增加,而来自丙酮酸的 13C 流入乳酸盐被显著抑制,表明在木质部导管细胞分化过程中,碳流从糖酵解积极转移到莽草酸途径。支持这一观点的是,木质部导管细胞分化诱导后,甘油醛 3-磷酸下游涉及糖酵解的大多数基因下调,而莽草酸途径和苯丙氨酸生物合成的基因上调。这些发现为木质部导管细胞分化过程中特定时间点从初级代谢途径到 SCW 聚合物生物合成途径的碳流积极转移提供了证据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ed94/10734892/8c6d740e99b6/pcad130f1.jpg

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