College of Life Sciences, Nantong University, Nantong 226007, China.
National Key Laboratory of Plant Molecular Genetics, CAS Center for Excellence in Molecular Plant Sciences, Institute of Plant Physiology & Ecology, Chinese Academy of Sciences, Shanghai 200032, China.
Int J Mol Sci. 2022 Oct 18;23(20):12451. doi: 10.3390/ijms232012451.
The calcium signaling pathway is critical for plant growth, development, and response to external stimuli. The CBL-CIPK pathway has been well characterized as a calcium-signaling pathway. However, in most reports, only a single function for this module has been described. Here, we examined multiple functions of this module. CIPK showed a similar distribution to that of CBL, and OsCBL and OsCIPK families were retained after experiencing whole genome duplication events through the phylogenetic and synteny analysis. This study found that OsCBL8 negatively regulated rice seed germination and seedling growth by interacting with OsCIPK17 with overexpression and gene editing mutant plants as materials combining plant phenotype, physiological indicators and transcriptome sequencing. This process is likely mediated by OsPP2C77, which is a member of the ABA signaling pathway. In addition, OsCBL mediated the targeting of OsNAC77 and OsJAMYB by OsCIPK17, thus conferring resistance to high temperatures and pathogens in rice. Our work reveals a unique signaling pathway, wherein OsCBL8 interacts with OsCIPK17 and provides rice with multiple resistance while also regulating seedling growth.
钙信号通路对于植物的生长、发育和对外界刺激的响应至关重要。CBL-CIPK 途径已被很好地描述为一种钙信号通路。然而,在大多数报道中,这个模块的单一功能被描述。在这里,我们研究了这个模块的多个功能。CIPK 的分布与 CBL 相似,通过系统发育和共线性分析,OsCBL 和 OsCIPK 家族在经历全基因组复制事件后得以保留。本研究发现,OsCBL8 通过与 OsCIPK17 相互作用,负调控水稻种子萌发和幼苗生长,以过表达和基因编辑突变体植物作为结合植物表型、生理指标和转录组测序的材料。这个过程可能是由 ABA 信号通路成员 OsPP2C77 介导的。此外,OsCBL 介导 OsCIPK17 靶向 OsNAC77 和 OsJAMYB,从而赋予水稻对高温和病原体的抗性。我们的工作揭示了一个独特的信号通路,其中 OsCBL8 与 OsCIPK17 相互作用,为水稻提供了多种抗性,同时也调节了幼苗生长。