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Hydrogen sulphide improves adaptation of Zea mays seedlings to iron deficiency

Authors :
Hai-Lei Zheng
Hu Wenjun
Wen-Hua Wang
Martin Simon
Xiang Liu
Zhouping Shangguan
Juan Chen
Yu-Ting Shang
Fei-Hua Wu
Source :
Journal of Experimental Botany
Publication Year :
2015

Abstract

Highlight H2S could help plants coping with iron deficiency through increasing phytosiderophore accumulation and secretion, regulating expression of genes related to iron homeostasis and sulphur metabolism, and consequently enhancing the photosynthesis of maize seedlings.<br />Hydrogen sulphide (H2S) is emerging as a potential molecule involved in physiological regulation in plants. However, whether H2S regulates iron-shortage responses in plants is largely unknown. Here, the role of H2S in modulating iron availability in maize (Zea mays L. cv Canner) seedlings grown in iron-deficient culture solution is reported. The main results are as follows: Firstly, NaHS, a donor of H2S, completely prevented leaf interveinal chlorosis in maize seedlings grown in iron-deficient culture solution. Secondly, electron micrographs of mesophyll cells from iron-deficient maize seedlings revealed plastids with few photosynthetic lamellae and rudimentary grana. On the contrary, mesophyll chloroplasts appeared completely developed in H2S-treated maize seedlings. Thirdly, H2S treatment increased iron accumulation in maize seedlings by changing the expression levels of iron homeostasis- and sulphur metabolism-related genes. Fourthly, phytosiderophore (PS) accumulation and secretion were enhanced by H2S treatment in seedlings grown in iron-deficient solution. Indeed, the gene expression of ferric-phytosiderophore transporter (ZmYS1) was specifically induced by iron deficiency in maize leaves and roots, whereas their abundance was decreased by NaHS treatment. Lastly, H2S significantly enhanced photosynthesis through promoting the protein expression of ribulose-1,5-bisphosphate carboxylase large subunit (RuBISCO LSU) and phosphoenolpyruvate carboxylase (PEPC) and the expression of genes encoding RuBISCO large subunit (RBCL), small subunit (RBCS), D1 protein (psbA), and PEPC in maize seedlings grown in iron-deficient solution. These results indicate that H2S is closely related to iron uptake, transport, and accumulation, and consequently increases chlorophyll biosynthesis, chloroplast development, and photosynthesis in plants.

Details

ISSN :
14602431
Volume :
66
Issue :
21
Database :
OpenAIRE
Journal :
Journal of experimental botany
Accession number :
edsair.doi.dedup.....b92327b47955a96e327bbf5f82502f66