Ren H, Wang Z, Shang X, Zhang X, Ma L, Bian Y, Wang D, Liu W
Shanxi Normal University, Taiyuan, Shanxi, China.
Plant Biol (Stuttg). 2024 Jan;26(1):117-125. doi: 10.1111/plb.13600. Epub 2023 Nov 28.
Both NO and GAs are essential for regulating various physiological processes and stress responses in plants. However, the interaction between these two molecules remains unclear. We investigated the distinct response patterns of Arabidopsis thaliana Col-0 and GA synthesis functional deficiency mutants to NO by measuring root length. To investigate underlying mechanisms, we detected bioactive GA content using UHPLC-ESI-MS/MS, assessed the accumulation of ROS by chemical staining Arabidopsis roots. We also conducted RNA-seq analysis and compared results between Col-0 and ga3ox1, with and without SNP (as NO donor) treatment. Phenotypic results revealed that the inhibitory effect of NO on primary roots of Arabidopsis was primarily mediated by GA3-oxidase, rather than GA20-oxidase or GA2-oxidase. The content of GA decreased in Col-0 treated with SNP, whereas this decrease was not observed in ga3ox1. The deficiency of GA3-oxidase alleviated the buildup of H O in roots when treated with SNP. We identified 222 DEGs. GO annotation of these DEGs revealed that all top 20 GO terms were related to stress responses. Moreover, three DEGs were annotated to GA-related processes (DDF1, DDF2, EXPA1), and seven DEGs were associated with root development (RAV1, RGF2, ERF71, ZAT6, MYB77, XT1, and DTX50). In summary, NO inhibits primary root growth partially by repressing GA3-oxidase catalysed GA synthesis in Arabidopsis. ROS, Ca , DDF1, DDF2, EXPA1 and seven root development-related genes may be involved in crosstalk between NO and GAs.
一氧化氮(NO)和赤霉素(GAs)对于调节植物的各种生理过程和应激反应都至关重要。然而,这两种分子之间的相互作用仍不清楚。我们通过测量根长来研究拟南芥Col-0和GA合成功能缺陷突变体对NO的不同反应模式。为了探究潜在机制,我们使用超高效液相色谱-电喷雾串联质谱(UHPLC-ESI-MS/MS)检测生物活性GA的含量,通过对拟南芥根进行化学染色来评估活性氧(ROS)的积累。我们还进行了RNA测序分析,并比较了Col-0和ga3ox1在有和没有SNP(作为NO供体)处理下的结果。表型结果表明,NO对拟南芥初生根的抑制作用主要由GA3氧化酶介导,而不是GA20氧化酶或GA2氧化酶。用SNP处理的Col-0中GA含量降低,而在ga3ox1中未观察到这种降低。GA3氧化酶的缺乏减轻了用SNP处理时根中H₂O的积累。我们鉴定出222个差异表达基因(DEGs)。对这些DEGs的基因本体(GO)注释显示,所有前20个GO术语都与应激反应相关。此外,有三个DEGs被注释到与GA相关的过程(DDF1、DDF2、EXPA1),七个DEGs与根发育相关(RAV1、RGF2、ERF71、ZAT6、MYB77、XT1和DTX50)。总之,NO通过抑制拟南芥中GA3氧化酶催化的GA合成来部分抑制初生根生长。ROS、Ca²⁺、DDF1、DDF2、EXPA1和七个与根发育相关的基因可能参与了NO和GAs之间的相互作用。