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激素信号的微调与甜樱桃芽的休眠状态有关。

Fine tuning of hormonal signaling is linked to dormancy status in sweet cherry flower buds.

机构信息

Univ. Bordeaux, INRAE, Biologie du Fruit et Pathologie, UMR 1332, av. Edouard Bourlaux, 33140 Villenave d'Ornon, France.

Agro Innovation International - Centre Mondial d'Innovation - Groupe Roullier, 35400 St Malo, France.

出版信息

Tree Physiol. 2021 Apr 8;41(4):544-561. doi: 10.1093/treephys/tpaa122.

DOI:10.1093/treephys/tpaa122
PMID:32975290
Abstract

In temperate trees, optimal timing and quality of flowering directly depend on adequate winter dormancy progression, regulated by a combination of chilling and warm temperatures. Physiological, genetic and functional genomic studies have shown that hormones play a key role in bud dormancy establishment, maintenance and release. We combined physiological and transcriptional analyses, quantification of abscisic acid (ABA) and gibberellins (GAs), and modeling to further investigate how these signaling pathways are associated with dormancy progression in the flower buds of two sweet cherry cultivars. Our results demonstrated that GA-associated pathways have distinct functions and may be differentially related with dormancy. In addition, ABA levels rise at the onset of dormancy, associated with enhanced expression of ABA biosynthesis PavNCED genes, and decreased prior to dormancy release. Following the observations that ABA levels are correlated with dormancy depth, we identified PavUG71B6, a sweet cherry UDP-GLYCOSYLTRANSFERASE gene that up-regulates active catabolism of ABA to ABA glucosyl ester (ABA-GE) and may be associated with low ABA content in the early cultivar. Subsequently, we modeled ABA content and dormancy behavior in three cultivars based on the expression of a small set of genes regulating ABA levels. These results strongly suggest the central role of ABA pathway in the control of dormancy progression and open up new perspectives for the development of molecular-based phenological modeling.

摘要

在温带树木中,开花的最佳时间和质量直接取决于冬季休眠的充分进展,这是由冷藏和温暖温度的组合来调节的。生理、遗传和功能基因组学研究表明,激素在芽休眠的建立、维持和释放中发挥着关键作用。我们结合了生理和转录分析、脱落酸 (ABA) 和赤霉素 (GA) 的定量以及建模,以进一步研究这些信号通路如何与两种甜樱桃品种的花芽休眠进展相关。我们的结果表明,GA 相关途径具有不同的功能,并且可能与休眠有不同的关系。此外,ABA 水平在休眠开始时升高,与 ABA 生物合成 PavNCED 基因的表达增强有关,并且在休眠释放之前降低。在观察到 ABA 水平与休眠深度相关之后,我们鉴定了 PavUG71B6,这是一个甜樱桃 UDP-糖基转移酶基因,它上调 ABA 的活性分解代谢为 ABA 葡萄糖酯 (ABA-GE),并且可能与早期品种中 ABA 含量低有关。随后,我们基于调节 ABA 水平的一小部分基因的表达,对三个品种的 ABA 含量和休眠行为进行了建模。这些结果强烈表明 ABA 途径在控制休眠进展中的核心作用,并为基于分子的物候建模的发展开辟了新的视角。

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