Signaling function of NH4+ in the activation of Fe-deficiency response in cucumber (Cucumis sativus L.)

被引:0
作者
Tavakoli, Fatemeh [1 ]
Hajiboland, Roghieh [1 ]
Bosnic, Dragana [2 ]
Bosnic, Predrag [3 ]
Nikolic, Miroslav [3 ]
Tolra, Roser [4 ]
Poschenrieder, Charlotte [4 ]
机构
[1] Univ Tabriz, Dept Plant Cell & Mol Biol, Tabriz, Iran
[2] Univ Belgrade, Inst Mol Genet & Genet Engn, Belgrade, Serbia
[3] Univ Belgrade, Inst Multidisciplinary Res, Belgrade, Serbia
[4] Autonomous Univ Barcelona, Biosci Fac, Plant Physiol Lab, Barcelona, Spain
关键词
Ethylene; FIT; Foliar application; Iron deficiency; NH4+ signalling; STOP1; TRANSCRIPTION FACTOR FIT; IRON-DEFICIENCY; NITRIC-OXIDE; METABOLIC-RESPONSES; APOPLASTIC IRON; GENE-EXPRESSION; ARABIDOPSIS; ACQUISITION; ETHYLENE; AMMONIUM;
D O I
10.1007/s00425-024-04480-5
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Main conclusion NH4+ is necessary for full functionality of reduction-based Fe deficiency response in plants. Nitrogen (N) is present in soil mainly as nitrate (NO3-) or ammonium (NH4+). Although the significance of a balanced supply of NO3- and NH4+ for optimal growth has been generally accepted, its importance for iron (Fe) acquisition has not been sufficiently investigated. In this work, hydroponically grown cucumber (Cucumis sativus L. cv. Maximus) plants were supplied with NO3- as the sole N source under -Fe conditions. Upon the appearance of chlorosis, plants were supplemented with 2 mM NH4Cl by roots or leaves. The NH4+ treatment increased leaf SPAD and the HCl-extractable Fe concentration while decreased root apoplastic Fe. A concomitant increase in the root concentration of nitric oxide and activity of FRO and its abolishment by an ethylene action inhibitor, indicated activation of the components of Strategy I in NH4+-treated plants. Ammonium-pretreated plants showed higher utilization capacity of sparingly soluble Fe(OH)(3) and higher root release of H+, phenolics, and organic acids. The expression of the master regulator of Fe deficiency response (FIT) and its downstream genes (AHA1, FRO2, and IRT1) along with EIN3 and STOP1 was increased by NH4+ application. Temporal analyses and the employment of a split-root system enabled us to suggest that a permanent presence of NH4+ at concentrations lower than 2 mM is adequate to produce an unknown signal and causes a sustained upregulation of Fe deficiency-related genes, thus augmenting the Fe-acquisition machinery. The results indicate that NH4+ appears to be a widespread and previously underappreciated component of plant reduction-based Fe deficiency response.
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页数:21
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