The Wheat Lr67 Gene from the Sugar Transport Protein 13 Family Confers Multipathogen Resistance in Barley
Autor: | Katherine E. Dibley, Clive Lo, Anthony R. Ashton, Evans Lagudah, Andy C.W. Lui, Peter R. Ryan, Wendelin Schnippenkoetter, Martin Mascher, Ricky J. Milne, Lanxiang Wang |
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Rok vydání: | 2018 |
Předmět: |
0106 biological sciences
Genetics Mutation biology Physiology food and beverages Blumeria graminis Plant Science biology.organism_classification medicine.disease_cause 01 natural sciences Yeast Gene expression medicine Hordeum vulgare Puccinia hordei Gene Powdery mildew 010606 plant biology & botany |
Zdroj: | Plant Physiology. 179:1285-1297 |
ISSN: | 1532-2548 0032-0889 |
DOI: | 10.1104/pp.18.00945 |
Popis: | Fungal pathogens are a major constraint to global crop production; hence, plant genes encoding pathogen resistance are important tools for combating disease. A few resistance genes identified to date provide partial, durable resistance to multiple pathogens and the wheat (Triticum aestivum) Lr67 hexose transporter variant (Lr67res) fits into this category. Two amino acids differ between the wild-type and resistant alleles – G144R and V387L. Exome sequence data from 267 barley (Hordeum vulgare) landraces and wild accessions was screened and neither of the Lr67res mutations was detected. The barley ortholog of Lr67, HvSTP13, was functionally characterized in yeast as a high affinity hexose transporter. The G144R mutation was introduced into HvSTP13 and abolished Glc uptake, whereas the V387L mutation reduced Glc uptake by ∼ 50%. Glc transport by HvSTP13 heterologously expressed in yeast was reduced when coexpressed with Lr67res. Stable transgenic Lr67res barley lines exhibited seedling resistance to the barley-specific pathogens Puccinia hordei and Blumeria graminis f. sp. hordei, which cause leaf rust and powdery mildew, respectively. Barley plants expressing Lr67res exhibited early senescence and higher pathogenesis-related (PR) gene expression. Unlike previous observations implicating flavonoids in the resistance of transgenic sorghum (Sorghum bicolor) expressing Lr34res, another wheat multipathogen resistance gene, barley flavonoids are unlikely to have a role in Lr67res-mediated resistance. Similar to observations made in yeast, Lr67res reduced Glc uptake in planta. These results confirm that the pathway by which Lr67res confers resistance to fungal pathogens is conserved between wheat and barley. |
Databáze: | OpenAIRE |
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