脱落酸和糖对樱桃内生休眠释放的影响

F. Chmielewski, K. Götz, T. Homann, G. Huschek, H. Rawel
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引用次数: 28

摘要

为了建立可靠且生理合理的植物春季发育模型,植物的内休眠释放时间一直是一个重要且未知的模型参数。到目前为止,经典的方法——如气候室实验——被用来推导这个未知参数。在这些实验中,植物的逐渐发育或芽鲜重或含水量的显著变化是休眠释放的可测量标志。这项研究提出了一种基于四种众所周知的代谢物的替代方法。在5个季节(2011/12-2015/16),从10月初到4月,每周对甜樱桃(品种‘Summit’)花蕾中脱落酸(ABA)和果糖、蔗糖、葡萄糖等糖类的含量进行分析。这些数据可以将这些代谢物的年度过程与内休眠释放的日期进行比较,内休眠释放是由先前发表的一项经典气候室实验得出的。结果表明,ABA和蔗糖是甜樱桃内休眠释放时间的重要代谢物。内休眠期间ABA含量达到5.65 μg -1 DW-1的平稳水平,持续3 ~ 6周。在生态休眠期间,ABA含量显著降低至平均4.41 μg -1 DW-1,这与11月28日(332 DOY)“顶峰”的生态休眠释放日期基本一致。蔗糖在冬季具有低温保护作用,其年循环与落叶后最低气温的年变化过程密切相关(r=-0.90)。生态休眠期间几乎恒定的蔗糖水平(平均21.0 mg g-1 w - 1,5年)不仅可以确定内休眠释放的日期,而且可以帮助确定个体发育的开始。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Identification of Endodormancy Release for Cherries (Prunus Avium L.) by Abscisic Acid and Sugars
In order to develop reliable and physiologically sound models for the plant development in spring, the date of endodormancy release is always a crucial and mostly unknown model parameter. Until present, classical approaches - such as climate chamber experiments - are used to derive this unknown parameter. In these experiments, progressive plant development or significant changes in bud’s fresh weight or water content are measurable markers for dormancy release. This study presents an alternative approach, which is based on four well-known metabolites. For 5 seasons (2011/12-2015/16), the content of abscisic acid (ABA) and sugars such as fructose, sucrose and glucose in sweet cherry flower buds (cultivar ‘Summit’) were weekly analysed between beginning of October and April. These data allow comparing the annual course of these metabolites with the date of endodormancy release, derived from a classical climate chamber experiment, published in a previous study. Results showed that ABA and sucrose are two important metabolites which can help to identify the date of endodormancy release of sweet cherries. On average, ABA content reached a plateau of 5.65 μg g-1 DW-1 during endodormancy, which was maintained for 3-6 weeks. The significant reduction of the ABA content after this period to 4.41 μg g-1 DW-1 on average during ecodormancy was nearly in agreement with the date of endodormancy release of ‘Summit’ on 28 November (332 DOY). The annual cycle of sucrose, which has a cryoprotective effect during winter, is well comprehensible and showed a close relationship to the annual course of minimum air temperature after leaf fall (r=-0.90). The nearly constant level of sucrose during ecodormancy (21.0 mg g-1 DW-1, 5 yr. mean) did not only allow deriving the date of endodormancy release but can also be helpful to define the beginning of ontogenetic development.
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