College of Life Science, Northeast Agricultural University, Harbin 150030, P.R. China.
J Agric Food Chem. 2021 Nov 17;69(45):13398-13415. doi: 10.1021/acs.jafc.1c04316. Epub 2021 Nov 3.
Although the regulation of Pi homeostasis by miR399 has been studied in various plant species, its underlying molecular mechanism in response to freezing stress is still poorly understood. In this work, we found that the expression of tae-miR399 and its target gene in the tillering nodes of the strong cold-resistant winter wheat cultivar Dongnongdongmai1 (Dn1) was not only significantly altered after severe winters but also responsive to short-term freezing stress. TaUBC24 physically interacted with TaICE1. Enhanced freezing tolerance was observed for tae-miR399-overexpressing Arabidopsis lines. Under freezing stress, overexpression of tae-miR399 ultimately decreased the expression of , inhibiting the degradation of AtICE1, which increased the expression of genes involved in the CBF signaling pathway and starch metabolism and promoted the activities of antioxidant enzymes. These results will improve our understanding of the molecular mechanism through which the miR399- module plays a cardinal role in regulating plant freezing stress tolerance through mediation of downstream pathways.
尽管 miR399 对 Pi 动态平衡的调节已在多种植物物种中进行了研究,但它对冷冻胁迫的潜在分子机制仍知之甚少。在这项工作中,我们发现强抗寒冬小麦品种 Dongnongdongmai1 (Dn1) 分蘖节点中 tae-miR399 及其靶基因 的表达不仅在严冬后发生了显著变化,而且对短期冷冻胁迫也有反应。TaUBC24 与 TaICE1 发生物理相互作用。拟南芥中 tae-miR399 的过表达表现出增强的抗冻性。在冷冻胁迫下,tae-miR399 的过表达最终降低了 的表达,抑制了 AtICE1 的降解,增加了参与 CBF 信号通路和淀粉代谢的基因的表达,并促进了抗氧化酶的活性。这些结果将提高我们对分子机制的理解,即 miR399 模块通过介导下游途径在调节植物抗冻性方面发挥着重要作用。