National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University, Wuhan, 430070, China.
College of Plant Science and Technology, Huazhong Agricultural University, Wuhan, 430070, China.
Plant J. 2018 Apr;94(1):32-47. doi: 10.1111/tpj.13837. Epub 2018 Mar 5.
OsGBPs are a small family of four genes in rice (Oryza sativa L.) that function as transcription factors recognizing the GAGA motif; however, their functions in plant growth and development remain unclear. Here we report the functions of OsGBPs in plant growth and grain development. Knock-down and knock-out of OsGBP1 promoted seedling growth and enhanced grain length, whereas overexpression of OsGBP1 exhibited the opposite effect on seedling growth and grain length, indicating that OsGBP1 repressed grain length and seedling growth. In addition, overexpression of OsGBP1 led to delayed flowering time and suppressed plant height. OsGBP1 could regulate OsLFL1 expression through binding to the (GA) element of its promoter. In contrast, OsGBP3 induced grain length and plant height. Grain length and plant height were decreased in OsGBP3RNAi lines and were increased in OsGBP3 overexpression lines. We also found a synergistic effect of these two genes on grain width and plant growth. RNAi of both OsGBP1 and OsGBP3 resulted in severe dwarfism, compared with RNAi of a single gene. These results suggest the presence of functional divergence of OsGBPs in the regulation of grain size and plant growth; these results enrich our understanding of the roles of GAGA-binding transcription factors in the regulatory pathways of plant development.
OsGBPs 是水稻(Oryza sativa L.)中一个由四个基因组成的小家族,它们作为转录因子识别 GAGA 基序;然而,它们在植物生长和发育中的功能尚不清楚。在这里,我们报告了 OsGBPs 在植物生长和谷物发育中的功能。OsGBP1 的敲低和敲除促进了幼苗生长并增加了粒长,而 OsGBP1 的过表达对幼苗生长和粒长表现出相反的效果,表明 OsGBP1 抑制了粒长和幼苗生长。此外,过表达 OsGBP1 导致开花时间延迟和株高抑制。OsGBP1 可以通过与启动子中(GA)元件结合来调节 OsLFL1 的表达。相比之下,OsGBP3 诱导粒长和株高增加。OsGBP3RNAi 系的粒长和株高降低,而 OsGBP3 过表达系的粒长和株高增加。我们还发现这两个基因对粒宽和植物生长有协同作用。与单个基因的 RNAi 相比,OsGBP1 和 OsGBP3 的 RNAi 导致严重的矮化。这些结果表明 OsGBPs 在调节粒大小和植物生长方面存在功能分化;这些结果丰富了我们对 GAGA 结合转录因子在植物发育调控途径中的作用的理解。