College of Agriculture and Biotechnology, Zhejiang University, Hangzhou, Zhejiang, China.
Zhejiang Provincial Key Laboratory of Integrative Biology and Utilization of Horticultural Plants, Hangzhou, Zhejiang, China.
Plant Cell Environ. 2020 Jun;43(6):1360-1375. doi: 10.1111/pce.13744. Epub 2020 Mar 7.
Bud dormancy is indispensable for the survival of perennial plants in cold winters. Abscisic acid (ABA) has essential functions influencing the endo-dormancy status. Dormancy-associated MADS-box/SHORT VEGETATIVE PHASE-like genes function downstream of the ABA signalling pathway to regulate bud dormancy. However, the regulation of DAM/SVP expression remains largely uncharacterized. In this study, we confirmed that endo-dormancy maintenance and PpyDAM3 expression are controlled by the ABA content in pear (Pyrus pyrifolia) buds. The expression of pear ABRE-BINDING FACTOR3 (PpyABF3) was positively correlated with PpyDAM3 expression. Furthermore, PpyABF3 directly bound to the second ABRE in the PpyDAM3 promoter to activate its expression. Interestingly, both PpyABF3 and PpyDAM3 repressed the cell division and growth of transgenic pear calli. Another ABA-induced ABF protein, PpyABF2, physically interacted with PpyABF3 and disrupted the activation of the PpyDAM3 promoter by PpyABF3, indicating DAM expression was precisely controlled. Additionally, our results suggested that the differences in the PpyDAM3 promoter in two pear cultivars might be responsible for the diversity in the chilling requirements. In summary, our data clarify the finely tuned regulatory mechanism underlying the effect of ABA on DAM gene expression and provide new insights into ABA-related bud dormancy regulation.
芽休眠对于多年生植物在寒冷冬季的生存是必不可少的。脱落酸 (ABA) 对影响内休眠状态具有重要功能。休眠相关的 MADS 框/短营养期类似基因作为 ABA 信号通路的下游,调节芽休眠。然而,DAM/SVP 表达的调控在很大程度上仍未被阐明。在本研究中,我们证实了内休眠的维持和 PpyDAM3 的表达受梨(Pyrus pyrifolia)芽中 ABA 含量的控制。梨 ABRE 结合因子 3 (PpyABF3) 的表达与 PpyDAM3 的表达呈正相关。此外,PpyABF3 直接与 PpyDAM3 启动子中的第二个 ABRE 结合,激活其表达。有趣的是,PpyABF3 和 PpyDAM3 均抑制了转基因梨愈伤组织的细胞分裂和生长。另一种 ABA 诱导的 ABF 蛋白 PpyABF2 与 PpyABF3 相互作用,并破坏 PpyABF3 对 PpyDAM3 启动子的激活,表明 DAM 表达受到精确调控。此外,我们的结果表明,两个梨品种 PpyDAM3 启动子的差异可能是导致其对冷需求多样性的原因。总之,我们的数据阐明了 ABA 对 DAM 基因表达影响的精细调控机制,并为 ABA 相关芽休眠调控提供了新的见解。