Kaszler Nikolett, Benkő Péter, Molnár Árpád, Zámbori Abigél, Fehér Attila, Gémes Katalin
Institute of Plant Biology, Biological Research Centre, Eötvös Loránd Research Network, 62. Temesvári krt., H-6726 Szeged, Hungary.
Doctoral School of Biology, University of Szeged, 52. Közép fasor, H-6726 Szeged, Hungary.
Plants (Basel). 2023 Jan 18;12(3):454. doi: 10.3390/plants12030454.
Lateral root primordia (LRPs) of Arabidopsis can be directly converted to shoot meristems (SMs) by the application of exogenous cytokinin. Here, we report that Arabidopsis POLYAMINE OXIDASE 5 (AtPAO5) contributes to this process, since the rate of SM formation from LRPs was significantly lower in the knockout mutant. Furthermore, the presented experiments showed that AtPAO5 influences SM formation via controlling the thermospermine (T-Spm) level. Gene expression analyses supported the view that the mutation as well as exogenous T-Spm downregulate the expression of the class 3 haemoglobin coding genes and . AtGLB1 and 2 have been reported to augment cytokinin sensitivity, indirectly inhibiting the expression of type-A ARABIDOPSIS RESPONSE REGULATORs (ARRs). In agreement, the same ARR-coding genes were found to be upregulated in the mutant. Although GLB proteins might also control cytokinin-induced nitric oxide (NO) accumulation, we could not find experimental evidence for it. Rather, the negative effect of NO-donor treatment on AtPAO5 gene expression and SM formation was seen. Nevertheless, a hypothetical pathway is set up explaining how AtPAO5 may affect direct shoot meristem formation, controlling cytokinin sensitivity through T-Spm and GLBs.
通过施加外源细胞分裂素,拟南芥的侧根原基(LRP)可直接转化为茎尖分生组织(SM)。在此,我们报道拟南芥多胺氧化酶5(AtPAO5)参与了这一过程,因为在敲除突变体中,LRP形成SM的速率显著降低。此外,所展示的实验表明AtPAO5通过控制热精胺(T-Spm)水平影响SM的形成。基因表达分析支持了这样的观点,即该突变以及外源T-Spm下调了3类血红蛋白编码基因AtGLB1和AtGLB2的表达。据报道,AtGLB1和AtGLB2可增强细胞分裂素敏感性,间接抑制A型拟南芥反应调节因子(ARR)的表达。与此一致,在AtPAO5突变体中发现相同的ARR编码基因上调。尽管GLB蛋白可能也控制细胞分裂素诱导的一氧化氮(NO)积累,但我们未找到相关实验证据。相反,观察到NO供体处理对AtPAO5基因表达和SM形成有负面影响。然而,我们构建了一个假设途径,解释AtPAO5如何通过T-Spm和GLB控制细胞分裂素敏感性来影响直接茎尖分生组织的形成。