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腋芽在玫瑰中的生长由糖代谢和信号转导控制。

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

机构信息

Université Angers, Institut Agro, INRAE, IRHS, SFR QUASAV, 49000 Angers, France.

College of Agronomy, Qingdao Agricultural University, Qingdao 266109, China.

出版信息

J Exp Bot. 2021 Apr 2;72(8):3044-3060. doi: 10.1093/jxb/erab046.

DOI:10.1093/jxb/erab046
PMID:33543244
Abstract

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.

摘要

分枝是植物生长和发育过程中的一个关键过程,由生长素和糖拮抗调节。与对激素调控网络的广泛研究相比,我们目前对糖信号通路在芽生长中的作用的了解还很有限。基于一个全面的逐步策略,我们研究了糖酵解/三羧酸 (TCA) 循环和氧化戊糖磷酸途径 (OPPP) 在芽生长控制中的作用。我们证明,这些途径对于植物去头后和响应糖可用性促进芽生长是必要的。它们也是生长素和糖可用性之间拮抗相互作用的靶点。这两条途径协同作用,下调 BRC1 的表达,BRC1 是一种保守的分枝抑制剂。使用稳定转化 GFP 融合 RhBRC1(pRhBRC1)启动子序列的 Rosa 愈伤组织,发现糖酵解/TCA 循环和 OPPP 协同抑制 pRhBRC1 的转录活性。糖酵解/TCA 循环和 OPPP 依赖性调节分别涉及 pRhBRC1 的-1973/-1611 bp 和-1206/-709 bp 区域。我们的研究结果表明,糖酵解/TCA 循环和 OPPP 是分枝控制的组成部分,能够将内源性因素与芽生长的发育程序联系起来,可能通过两种不同的机制。

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