Outgrowth of the axillary bud in rose is controlled by sugar metabolism and signalling

糖酵解 腋芽 柠檬酸循环 磷酸戊糖途径 生物 串扰 生长素 细胞生物学 生物化学 代谢途径 司他内酯 开枪 新陈代谢 植物 拟南芥 基因 组织培养 突变体 体外 物理 光学
作者
Ming Wang,Maria-Dolores Pérez-Garcia,Jean‐Michel Davière,François Barbier,Laurent Ogé,José Gentilhomme,Linda Voisine,Thomas Péron,Alexandra Launay‐Avon,Gilles Clément,Nicolas Baumberger,Sandrine Balzergue,David Macherel,Philippe Grappin,Jessica Bertheloot,Patrick Achard,Latifa Hamama,Soulaïman Sakr
出处
期刊:Journal of Experimental Botany [Oxford University Press]
卷期号:72 (8): 3044-3060 被引量:77
标识
DOI:10.1093/jxb/erab046
摘要

Shoot branching is a pivotal process during plant growth and development, and is antagonistically orchestrated by auxin and sugars. In contrast to extensive investigations on hormonal regulatory networks, our current knowledge on the role of sugar signalling pathways in bud outgrowth is scarce. Based on a comprehensive stepwise strategy, we investigated the role of glycolysis/the tricarboxylic acid (TCA) cycle and the oxidative pentose phosphate pathway (OPPP) in the control of bud outgrowth. We demonstrated that these pathways are necessary for bud outgrowth promotion upon plant decapitation and in response to sugar availability. They are also targets of the antagonistic crosstalk between auxin and sugar availability. The two pathways act synergistically to down-regulate the expression of BRC1, a conserved inhibitor of shoot branching. Using Rosa calluses stably transformed with GFP-fused promoter sequences of RhBRC1 (pRhBRC1), glycolysis/TCA cycle and the OPPP were found to repress the transcriptional activity of pRhBRC1 cooperatively. Glycolysis/TCA cycle- and OPPP-dependent regulations involve the -1973/-1611 bp and -1206/-709 bp regions of pRhBRC1, respectively. Our findings indicate that glycolysis/TCA cycle and the OPPP are integrative parts of shoot branching control and can link endogenous factors to the developmental programme of bud outgrowth, likely through two distinct mechanisms.
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