A constitutively active form of a durum wheat Naâº/H⺠antiporter SOS1 confers high salt tolerance to transgenic Arabidopsis.
Plant Cell Rep
; 33(2): 277-88, 2014 Feb.
Article
em En
| MEDLINE
| ID: mdl-24150094
The SOS signaling pathway has emerged as a key mechanism in preserving the homeostasis of Na⺠and K⺠under saline conditions. We have recently identified and functionally characterized, by complementation studies in yeast, the gene encoding the durum wheat plasma membrane Naâº/H⺠antiporter (TdSOS1). To extend these functional studies to the whole plant level, we complemented Arabidopsis sos1-1 mutant with wild-type TdSOS1 or with the hyperactive form TdSOS1∆972 and compared them to the Arabidopsis AtSOS1 protein. The Arabidopsis sos1-1 mutant is hypersensitive to both Na⺠and Li⺠ions. Compared with sos1-1 mutant transformed with the empty binary vector, seeds from TdSOS1 or TdSOS1∆972 transgenic plants had better germination under salt stress and more robust seedling growth in agar plates as well as in nutritive solution containing Na⺠or Li⺠salts. The root elongation of TdSOS1∆972 transgenic lines was higher than that of Arabidopsis sos1-1 mutant transformed with TdSOS1 or with the endogenous AtSOS1 gene. Under salt stress, TdSOS1∆972 transgenic lines showed greater water retention capacity and retained low Na⺠and high K⺠in their shoots and roots. Our data showed that the hyperactive form TdSOS1∆972 conferred a significant ionic stress tolerance to Arabidopsis plants and suggest that selection of hyperactive alleles of the SOS1 transport protein may pave the way for obtaining salt-tolerant crops.
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1
Coleções:
01-internacional
Base de dados:
MEDLINE
Assunto principal:
Arabidopsis
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Trocadores de Sódio-Hidrogênio
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Regulação da Expressão Gênica de Plantas
Idioma:
En
Ano de publicação:
2014
Tipo de documento:
Article