Li Jingkun, Qiao Hualiang, Yin Pengcheng, Liu Meng, Yang Yifan, Li Ke, Yang Le, Yang Chaosha, Zhao Lifeng, Zhou Shuo, Liu Yongwei, Zhou Chunjiang, Wang Geng
Ministry of Education Key Laboratory of Molecular and Cell Biology, Hebei Collaboration Innovation Center for Cell Signaling and Environmental Adaption, Hebei Key Laboratory of Molecular and Cellular Biology, College of Life Sciences, Hebei Normal University, Shijiazhuang, 050024, China.
Institute of Biotechnology and Food Science, Hebei Academy of Agriculture and Forestry Sciences, Shijiazhuang, 050051, China.
Plant J. 2023 May;114(3):570-590. doi: 10.1111/tpj.16154. Epub 2023 Mar 20.
Leaf senescence involves massive multidimensional alterations, such as nutrient redistribution, and is closely related to crop yield and quality. No apical meristem, Arabidopsis transcription activation factor, and Cup-shaped cotyledon (NAC)-type transcription factors integrate various signals and modulate an enormous number of target genes to ensure the appropriate progression of leaf senescence. However, few leaf senescence-related NACs have been functionally characterized in wheat. Based on our previous RNA-sequencing (RNA-seq) data, we focused on a NAC family member, TaNAC69-B, which is increasingly expressed during leaf senescence in wheat. Overexpression of TaNAC69-B led to precocious leaf senescence in wheat and Arabidopsis, and affected several agricultural traits in transgenic wheat. Moreover, impaired expression of TaNAC69-B by virus-induced gene silencing retarded the leaf senescence in wheat. By RNA-seq and quantitative real-time polymerase chain reaction analysis, we confirmed that some abscisic acid (ABA) biosynthesis genes, including AAO3 and its ortholog in wheat, TraesCS2B02G270600 (TaAO3-B), were elevated by the overexpression of TaNAC69-B. Consistently, we observed more severe ABA-induced leaf senescence in TaNAC69-B-OE wheat and Arabidopsis plants. Furthermore, we determined that TaNAC69-B bound to the NAC binding site core (CGT) on the promoter regions of AAO3 and TaAO3-B. Moreover, we confirmed elevated ABA levels in TaNAC69-B-OE wheat lines. Although TaNAC69-B shares 39.83% identity (amino acid) with AtNAP, TaNAC69-B did not completely restore the delayed leaf senescence in the atnap mutant. Collectively, our results revealed a positive feedback loop, consisting of TaNAC69-B, ABA biosynthesis and leaf senescence, that is essential for the regulation of leaf senescence in wheat.
叶片衰老涉及大量多维度的变化,如营养物质再分配,并且与作物产量和品质密切相关。无顶端分生组织、拟南芥转录激活因子和杯状子叶(NAC)型转录因子整合各种信号并调控大量靶基因,以确保叶片衰老的适当进程。然而,在小麦中,很少有与叶片衰老相关的NAC蛋白具有功能特征。基于我们之前的RNA测序(RNA-seq)数据,我们聚焦于一个NAC家族成员TaNAC69-B,它在小麦叶片衰老过程中表达量逐渐增加。TaNAC69-B的过表达导致小麦和拟南芥叶片早衰,并影响转基因小麦的几个农艺性状。此外,通过病毒诱导的基因沉默削弱TaNAC69-B的表达会延缓小麦叶片衰老。通过RNA-seq和定量实时聚合酶链反应分析,我们证实一些脱落酸(ABA)生物合成基因,包括AAO3及其在小麦中的直系同源基因TraesCS2B02G270600(TaAO3-B),因TaNAC69-B的过表达而升高。一致地,我们在TaNAC69-B过表达的小麦和拟南芥植株中观察到更严重的ABA诱导的叶片衰老。此外,我们确定TaNAC69-B与AAO3和TaAO3-B启动子区域的NAC结合位点核心(CGT)结合。此外,我们证实TaNAC69-B过表达的小麦株系中ABA水平升高。尽管TaNAC69-B与AtNAP的氨基酸序列一致性为39.83%,但TaNAC69-B并未完全恢复atnap突变体中延迟的叶片衰老。总体而言,我们的结果揭示了一个由TaNAC69-B、ABA生物合成和叶片衰老组成的正反馈环,这对小麦叶片衰老的调控至关重要。