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Gibberellin and spermidine synergistically regulate polyamine metabolism during the development of Rhododendron flowers

文献类型: 外文期刊

作者: Xu, Qian 1 ; Li, Huaxiong 2 ; Liu, Shiliang 1 ; Huang, Wenpei 1 ; Xian, Xiaolin 3 ; Li, Qing 4 ; Long, Yue 1 ; Chen, Rui; 1 ;

作者机构: 1.Sichuan Agr Univ, Coll Landscape Architecture, Chengdu 611130, Peoples R China

2.Neijiang Acad Agr Sci, Key Lab Biol, Neijiang 641000, Peoples R China

3.Sichuan Acad Agr Sci, Inst Hort, Chengdu 610066, Peoples R China

4.Tibet Acad Agr & Anim Husb Sci, Lhasa 850000, Peoples R China

5.Housing & Urban Rural Dev Bur, Guangyuan 628000, Peoples R China

关键词: Flowering dynamics; Exogenous gibberellin; Exogenous spermidine; Flower senescence; Polyamine metabolism

期刊名称:PLANT GROWTH REGULATION ( 影响因子:3.412; 五年影响因子:3.691 )

ISSN: 0167-6903

年卷期:

页码:

收录情况: SCI

摘要: Polyamines (PAs) are involved in various developmental processes, especially plant flowering. Their significant influences have been established; however, the exact mechanism by which PAs regulate flowering remains unclear. To explore PA metabolism in plant flowering, gibberellic acid (GA(3), 0 similar to 2400 mg L-1) and spermidine (Spd, 0 similar to 1 mM) were applied alone or in combination during the early stage of flower bud formation in Rhododendron simsii. The application of GA(3) alone advanced initial flowering, while that of Spd alone delayed initial flowering. Interestingly, GA(3) and Spd applied in combination advanced initial flowering by 2 days. Furthermore, from stage 1 to 2, endogenous PA levels and the soluble conjugated and insoluble bound fractions of PAs and key enzymes (e.g., diamine oxidase, arginine decarboxylase, ornithine decarboxylase and S-adenosylmethionine decarboxylase) increased, and the level of PA oxidase decreased. These findings revealed that exogenous GA(3) and Spd delay flower senescence by improving PA biosynthesis and preventing PA degradation. Moreover, exogenous GA(3) and Spd enhanced the levels of endogenous PA and GA(3), while the conversion of free PAs to soluble conjugated and insoluble bound forms delayed Rhododendron senescence. Overall, our findings reveal a potential positive feedback mechanism by which higher endogenous PA contents and the combined effects of exogenous GA(3) and Spd synergistically delay Rhododendron senescence by enhancing PA biosynthesis and converting free PA to soluble conjugated and insoluble bound forms, thus reducing PA degradation during flower senescence.

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