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Transgenic barley (Hordeum vulgare L.) expressing the wheat aluminium resistance gene (TaALMT1) shows enhanced phosphorus nutrition and grain production when grown on an acid soil.
Plant Biotechnol J. 2009 Jun; 7(5):391-400.PB

Abstract

Barley (Hordeum vulgare L.), genetically modified with the Al(3+) resistance gene of wheat (TaALMT1), was compared with a non-transformed sibling line when grown on an acidic and highly phosphate-fixing ferrosol supplied with a range of phosphorus concentrations. In short-term pot trials (26 days), transgenic barley expressing TaALMT1 (GP-ALMT1) was more efficient than a non-transformed sibling line (GP) at taking up phosphorus on acid soil, but the genotypes did not differ when the soil was limed. Differences in phosphorus uptake efficiency on acid soil could be attributed not only to the differential effects of aluminium toxicity on root growth between the genotypes, but also to differences in phosphorus uptake per unit root length. Although GP-ALMT1 out-performed GP on acid soil, it was still not as efficient at taking up phosphorus as plants grown on limed soil. GP-ALMT1 plants grown in acid soil possessed substantially smaller rhizosheaths than those grown in limed soil, suggesting that root hairs were shorter. This is a probable reason for the lower phosphorus uptake efficiency. When grown to maturity in large pots, GP-ALMT1 plants produced more than twice the grain as GP plants grown on acid soil and 80% of the grain produced by limed controls. Expression of TaALMT1 in barley was not associated with a penalty in either total shoot or grain production in the absence of Al(3+), with both genotypes showing equivalent yields in limed soil. These findings demonstrate that an important crop species can be genetically engineered to successfully increase grain production on an acid soil.

Authors+Show Affiliations

CSIRO Plant Industry, Canberra, ACT 2601, Australia.No affiliation info availableNo affiliation info availableNo affiliation info availableNo affiliation info availableNo affiliation info available

Pub Type(s)

Journal Article
Research Support, Non-U.S. Gov't

Language

eng

PubMed ID

19490502

Citation

Delhaize, Emmanuel, et al. "Transgenic Barley (Hordeum Vulgare L.) Expressing the Wheat Aluminium Resistance Gene (TaALMT1) Shows Enhanced Phosphorus Nutrition and Grain Production when Grown On an Acid Soil." Plant Biotechnology Journal, vol. 7, no. 5, 2009, pp. 391-400.
Delhaize E, Taylor P, Hocking PJ, et al. Transgenic barley (Hordeum vulgare L.) expressing the wheat aluminium resistance gene (TaALMT1) shows enhanced phosphorus nutrition and grain production when grown on an acid soil. Plant Biotechnol J. 2009;7(5):391-400.
Delhaize, E., Taylor, P., Hocking, P. J., Simpson, R. J., Ryan, P. R., & Richardson, A. E. (2009). Transgenic barley (Hordeum vulgare L.) expressing the wheat aluminium resistance gene (TaALMT1) shows enhanced phosphorus nutrition and grain production when grown on an acid soil. Plant Biotechnology Journal, 7(5), 391-400. https://doi.org/10.1111/j.1467-7652.2009.00403.x
Delhaize E, et al. Transgenic Barley (Hordeum Vulgare L.) Expressing the Wheat Aluminium Resistance Gene (TaALMT1) Shows Enhanced Phosphorus Nutrition and Grain Production when Grown On an Acid Soil. Plant Biotechnol J. 2009;7(5):391-400. PubMed PMID: 19490502.
* Article titles in AMA citation format should be in sentence-case
TY - JOUR T1 - Transgenic barley (Hordeum vulgare L.) expressing the wheat aluminium resistance gene (TaALMT1) shows enhanced phosphorus nutrition and grain production when grown on an acid soil. AU - Delhaize,Emmanuel, AU - Taylor,Phillip, AU - Hocking,Peter J, AU - Simpson,Richard J, AU - Ryan,Peter R, AU - Richardson,Alan E, PY - 2009/6/4/entrez PY - 2009/6/6/pubmed PY - 2009/6/26/medline SP - 391 EP - 400 JF - Plant biotechnology journal JO - Plant Biotechnol J VL - 7 IS - 5 N2 - Barley (Hordeum vulgare L.), genetically modified with the Al(3+) resistance gene of wheat (TaALMT1), was compared with a non-transformed sibling line when grown on an acidic and highly phosphate-fixing ferrosol supplied with a range of phosphorus concentrations. In short-term pot trials (26 days), transgenic barley expressing TaALMT1 (GP-ALMT1) was more efficient than a non-transformed sibling line (GP) at taking up phosphorus on acid soil, but the genotypes did not differ when the soil was limed. Differences in phosphorus uptake efficiency on acid soil could be attributed not only to the differential effects of aluminium toxicity on root growth between the genotypes, but also to differences in phosphorus uptake per unit root length. Although GP-ALMT1 out-performed GP on acid soil, it was still not as efficient at taking up phosphorus as plants grown on limed soil. GP-ALMT1 plants grown in acid soil possessed substantially smaller rhizosheaths than those grown in limed soil, suggesting that root hairs were shorter. This is a probable reason for the lower phosphorus uptake efficiency. When grown to maturity in large pots, GP-ALMT1 plants produced more than twice the grain as GP plants grown on acid soil and 80% of the grain produced by limed controls. Expression of TaALMT1 in barley was not associated with a penalty in either total shoot or grain production in the absence of Al(3+), with both genotypes showing equivalent yields in limed soil. These findings demonstrate that an important crop species can be genetically engineered to successfully increase grain production on an acid soil. SN - 1467-7652 UR - https://www.unboundmedicine.com/medline/citation/19490502/Transgenic_barley__Hordeum_vulgare_L___expressing_the_wheat_aluminium_resistance_gene__TaALMT1__shows_enhanced_phosphorus_nutrition_and_grain_production_when_grown_on_an_acid_soil_ L2 - https://doi.org/10.1111/j.1467-7652.2009.00403.x DB - PRIME DP - Unbound Medicine ER -