Agricultural Biotechnology Research Center , Academia Sinica, Taipei 11529, Taiwan.
Plant Physiol. 2013 Mar;161(3):1409-20. doi: 10.1104/pp.112.212068. Epub 2013 Jan 10.
The homeostasis of iron (Fe) in plants is strictly regulated to maintain an optimal level for plant growth and development but not cause oxidative stress. About 30% of arable land is considered Fe deficient because of calcareous soil that renders Fe unavailable to plants. Under Fe-deficient conditions, Arabidopsis (Arabidopsis thaliana) shows retarded growth, disordered chloroplast development, and delayed flowering time. In this study, we explored the possible connection between Fe availability and the circadian clock in growth and development. Circadian period length in Arabidopsis was longer under Fe-deficient conditions, but the lengthened period was not regulated by the canonical Fe-deficiency signaling pathway involving nitric oxide. However, plants with impaired chloroplast function showed long circadian periods. Fe deficiency and impaired chloroplast function combined did not show additive effects on the circadian period, which suggests that plastid-to-nucleus retrograde signaling is involved in the lengthening of circadian period under Fe deficiency. Expression pattern analyses of the central oscillator genes in mutants defective in CIRCADIAN CLOCK ASSOCIATED1/LATE ELONGATED HYPOCOTYL or GIGANTEA demonstrated their requirement for Fe deficiency-induced long circadian period. In conclusion, Fe is involved in maintaining the period length of circadian rhythm, possibly by acting on specific central oscillators through a retrograde signaling pathway.
植物中铁(Fe)的动态平衡受到严格调控,以维持最佳水平,促进植物生长和发育,同时避免氧化应激。大约 30%的耕地被认为是缺铁的,因为石灰性土壤使铁无法被植物利用。在缺铁条件下,拟南芥(Arabidopsis thaliana)的生长受到抑制,叶绿体发育紊乱,开花时间延迟。在这项研究中,我们探讨了铁供应与昼夜节律钟在生长和发育中的可能联系。在缺铁条件下,拟南芥的昼夜周期变长,但这种延长并不是由涉及一氧化氮的典型缺铁信号通路调节的。然而,叶绿体功能受损的植物表现出长的昼夜周期。缺铁和叶绿体功能受损的组合对昼夜周期没有表现出相加效应,这表明质体到核的逆行信号转导参与了缺铁下昼夜周期的延长。对中央振荡器基因在 CIRCADIAN CLOCK ASSOCIATED1/LATE ELONGATED HYPOCOTYL 或 GIGANTEA 突变体中的表达模式分析表明,它们需要铁缺乏诱导的长昼夜周期。总之,铁参与维持昼夜节律的周期长度,可能通过逆行信号通路作用于特定的中央振荡器。