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PMID: 24692647 Published · ppublish English Journal Article

Enhancing the aluminium tolerance of barley by expressing the citrate transporter genes SbMATE and FRD3.

Journal of experimental botany ·Vol. 65 ·No. 9 ·2014-06-00 ·Pages 2381-90

Zhou G, Pereira JF, Delhaize E, Zhou M, Magalhaes JV, Ryan PR

Abstract

Malate and citrate efflux from root apices is a mechanism of Al(3+) tolerance in many plant species. Citrate efflux is facilitated by members of the MATE (multidrug and toxic compound exudation) family localized to the plasma membrane of root cells. Barley (Hordeum vulgare) is among the most Al(3+)-sensitive cereal species but the small genotypic variation in tolerance that is present is correlated with citrate efflux via a MATE transporter named HvAACT1. This study used a biotechnological approach to increase the Al(3+) tolerance of barley by transforming it with two MATE genes that encode citrate transporters: SbMATE is the major Al(3+)-tolerance gene from sorghum whereas FRD3 is involved with Fe nutrition in Arabidopsis. Independent transgenic and null T3 lines were generated for both transgenes. Lines expressing SbMATE showed Al(3+)-activated citrate efflux from root apices and greater tolerance to Al(3+) toxicity than nulls in hydroponic and short-term soil trials. Transgenic lines expressing FRD3 exhibited similar phenotypes except citrate release from roots occurred constitutively. The Al(3+) tolerance of these lines was compared with previously generated transgenic barley lines overexpressing the endogenous HvAACT1 gene and the TaALMT1 gene from wheat. Barley lines expressing TaALMT1 showed significantly greater Al(3+) tolerance than all lines expressing MATE genes. This study highlights the relative efficacy of different organic anion transport proteins for increasing the Al(3+) tolerance of an important crop species.

Keywords
Acid soil Hordeum vulgare MATE transporters cereal citrate resistance root exudates transgenic.
MeSH Terms
Aluminum/metabolism Arabidopsis Proteins/genetics,metabolism Carrier Proteins/genetics,metabolism Gene Expression Hordeum/genetics,metabolism Membrane Transport Proteins/genetics,metabolism Plant Proteins/genetics,metabolism Plants, Genetically Modified/genetics,metabolism Sorghum/genetics Up-Regulation
Chemicals
Arabidopsis Proteins Carrier Proteins FRD3 protein, Arabidopsis Membrane Transport Proteins Plant Proteins citrate-binding transport protein Aluminum
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Zhou Gaofeng
Tasmanian Institute of Agriculture, University of Tasmania, PO Box 46, Kings Meadows, TAS 7249, Australia CSIRO Plant Industry, GPO Box 1600, Canberra, ACT 2601, Australia.
Pereira Jorge F
Embrapa Wheat, Rodovia BR 285 km 294, CEP 99001-970, Passo Fundo, RS, Brazil.
Delhaize Emmanuel
CSIRO Plant Industry, GPO Box 1600, Canberra, ACT 2601, Australia.
Zhou Meixue
Tasmanian Institute of Agriculture, University of Tasmania, PO Box 46, Kings Meadows, TAS 7249, Australia.
Magalhaes Jurandir V
Embrapa Maize and Sorghum, Rod. MG 424, Km 65, 35701-970, Sete Lagoas, Minas Gerais, Brazil.
Ryan Peter R
CSIRO Plant Industry, GPO Box 1600, Canberra, ACT 2601, Australia [email protected].
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Article Info
Journal
Journal of experimental botany
Abbr.
J Exp Bot
ISSN
1460-2431
Published
2014-06-00
Epub
2014-00-01
Pages
2381-90
Language
English
Region
England
NLM ID
9882906
PMCID
PMC4036506
Subset
IM
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