Chu Yanli, Xu Ning, Wu Qi, Yu Bo, Li Xingxing, Chen Rongrong, Huang Junli
Key Laboratory of Biorheological Science and Technology, Ministry of Education, Bioengineering College, Chongqing University, Chongqing, People's Republic of China.
Rice (N Y). 2019 May 28;12(1):38. doi: 10.1186/s12284-019-0298-6.
The MADS-box transcription factors mainly function in floral organ organogenesis and identity specification. Few research on their roles in vegetative growth has been reported.
Here we investigated the functions of OsMADS57 in plant vegetative growth in rice (Oryza sativa). Knockdown of OsMADS57 reduced the plant height, internode elongation and panicle exsertion in rice plants. Further study showed that the cell length was remarkably reduced in the uppermost internode in OsMADS57 knockdown plants at maturity. Moreover, OsMADS57 knockdown plants were more sensitive to gibberellic acid (GA), and contained less bioactive GA than wild-type plants, which implied that OsMADS57 is involved in gibberellin (GA) pathway. Expectedly, the transcript levels of OsGA2ox3, encoding GAs deactivated enzyme, were significantly enhanced in OsMADS57 knockdown plants. The level of EUI1 transcripts involved in GA deactivation was also increased in OsMADS57 knockdown plants. More importantly, dual-luciferase reporter assay and electrophoretic mobility shift assay showed that OsMADS57 directly regulates the transcription of OsGA2ox3 as well as EUI1 through binding to the CArG-box motifs in their promoter regions. In addition, OsMADS57 also modulated the expression of multiple genes involved in GA metabolism or GA signaling pathway, indicating the key and complex regulatory role of OsMADS57 in GA pathway in rice.
These results indicated that OsMADS57 acts as an important transcriptional regulator that regulates stem elongation and panicle exsertion in rice via GA-mediated regulatory pathway.
MADS盒转录因子主要在花器官发生和身份确定中发挥作用。关于它们在营养生长中的作用的研究报道较少。
在此,我们研究了水稻(Oryza sativa)中OsMADS57在植物营养生长中的功能。敲低OsMADS57会降低水稻植株的株高、节间伸长和穗抽出度。进一步研究表明,成熟时敲低OsMADS57的植株最上部节间的细胞长度显著缩短。此外,敲低OsMADS57的植株对赤霉素(GA)更敏感,且生物活性GA含量低于野生型植株,这表明OsMADS57参与赤霉素(GA)途径。不出所料,编码GA失活酶的OsGA2ox3的转录水平在敲低OsMADS57的植株中显著提高。参与GA失活的EUI1转录本水平在敲低OsMADS57的植株中也有所增加。更重要的是,双荧光素酶报告基因检测和电泳迁移率变动分析表明,OsMADS57通过结合其启动子区域的CArG盒基序直接调控OsGA2ox3以及EUI1的转录。此外,OsMADS57还调节了多个参与GA代谢或GA信号通路的基因的表达,表明OsMADS57在水稻GA途径中具有关键且复杂的调控作用。
这些结果表明,OsMADS57作为一种重要的转录调节因子,通过GA介导的调控途径调节水稻茎的伸长和穗抽出度。