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Socio-Economic Objective : Wheat
Status : Active
Australian State/Territory : WA
Research Topic : Production Function
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Crop and Pasture Production (5)
Crop and Pasture Biochemistry and Physiology (2)
Crop and Pasture Improvement (Selection and Breeding) (2)
Plant Cell and Molecular Biology (2)
Agricultural Biotechnology not elsewhere classified (1)
Crop and Pasture Protection (Pests, Diseases and Weeds) (1)
Genetically Modified Field Crops and Pasture (1)
Plant Physiology (1)
Proteomics and Intermolecular Interactions (excl. Medical Proteomics) (1)
Quantitative Genetics (incl. Disease and Trait Mapping Genetics) (1)
Receptors and Membrane Biology (1)
Soil Biology (1)
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Wheat (5)
Expanding Knowledge in the Agricultural and Veterinary Sciences (2)
Expanding Knowledge in the Biological Sciences (2)
Barley (1)
Control of Plant Pests, Diseases and Exotic Species in Farmland, Arable Cropland and Permanent Cropland Environments (1)
Lupins (1)
Oats (1)
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Australian Research Council (5)
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Linkage Projects (3)
ARC Future Fellowships (1)
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  • Researchers (18)
  • Funded Activities (5)
  • Organisations (8)
  • Active Funded Activity

    ARC Future Fellowships - Grant ID: FT210100902

    Funder
    Australian Research Council
    Funding Amount
    $786,690.00
    Summary
    Unravelling the secrets of the rhizosphere of crops. Phosphate is one of the most important limiting nutrients for crop growth and production. Plant acquisition of soil phosphate largely depends on root proliferation to accelerate soil exploration, and on phosphate bioavailability mediated by root exudates and rhizosphere microorganisms. Central to this is the need for a better understanding of the complex biogeochemical interfaces in the rhizosphere. This project explores recently developed non .... Unravelling the secrets of the rhizosphere of crops. Phosphate is one of the most important limiting nutrients for crop growth and production. Plant acquisition of soil phosphate largely depends on root proliferation to accelerate soil exploration, and on phosphate bioavailability mediated by root exudates and rhizosphere microorganisms. Central to this is the need for a better understanding of the complex biogeochemical interfaces in the rhizosphere. This project explores recently developed non-destructive imaging, isotope, and metabolism techniques to generate a systematic research tool in tracking rhizosphere interactions and imaging phosphate dynamics from macroscale to nanoscale levels. This study will provide new opportunities to improve crop nutrient use efficiency and crop production.
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    Active Funded Activity

    Linkage Projects - Grant ID: LP200200927

    Funder
    Australian Research Council
    Funding Amount
    $785,312.00
    Summary
    Digging deeper to improve yield stability. This project aims to provide innovative breeding solutions that harness the ‘hidden’ part of the plant, roots, to support the development of more productive crops in the face of climate variability. The project expects to generate new insights into the biology and genetics of root development in barley, a model cereal crop, by applying cutting-edge genome editing, phenotyping and genomics technologies. Anticipated outcomes include novel methodologies to .... Digging deeper to improve yield stability. This project aims to provide innovative breeding solutions that harness the ‘hidden’ part of the plant, roots, to support the development of more productive crops in the face of climate variability. The project expects to generate new insights into the biology and genetics of root development in barley, a model cereal crop, by applying cutting-edge genome editing, phenotyping and genomics technologies. Anticipated outcomes include novel methodologies to accelerate breeding for diverse production environments, with direct applications in barley, and other major cereals including wheat and oats. This should provide significant economic and social benefits to the Australian grains industry through yield stability amidst climate variability.
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    Active Funded Activity

    Linkage Projects - Grant ID: LP200100225

    Funder
    Australian Research Council
    Funding Amount
    $365,247.00
    Summary
    Does plasma membrane perception of 2,4-D influence auxin resistance? This project aims to investigate the role of the cell membrane in synthetic auxin herbicide resistance by analysing the functions and interaction partners of candidate resistance proteins. It is expected that this project will generate new knowledge about the very early response of plants to auxin and the difference between susceptible and resistant weeds in perceiving auxin herbicides. Expected outcomes of this project include .... Does plasma membrane perception of 2,4-D influence auxin resistance? This project aims to investigate the role of the cell membrane in synthetic auxin herbicide resistance by analysing the functions and interaction partners of candidate resistance proteins. It is expected that this project will generate new knowledge about the very early response of plants to auxin and the difference between susceptible and resistant weeds in perceiving auxin herbicides. Expected outcomes of this project include the identification of potential herbicide synergists and a greater understanding of how weeds develop resistance to auxin herbicides. This should benefit Australian grain growers by providing more effective weed control options and lessening the amount of unnecessarily-applied herbicide in the environment.
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    Active Funded Activity

    Discovery Projects - Grant ID: DP210101705

    Funder
    Australian Research Council
    Funding Amount
    $423,650.00
    Summary
    Decoding germination defects that threaten global wheat production. Wheat is a major commodity in Australia. Sprouting damage represents a major global threat to wheat production and food security. This project will explore the genetic and molecular mechanisms underpinning pre-harvest sprouting (PHS) and late-maturity amylase (LMA). This project will apply transcriptomics and proteomics to measure the expression of the biomolecules associated with PHS and LMA, generating fundamental knowledge of .... Decoding germination defects that threaten global wheat production. Wheat is a major commodity in Australia. Sprouting damage represents a major global threat to wheat production and food security. This project will explore the genetic and molecular mechanisms underpinning pre-harvest sprouting (PHS) and late-maturity amylase (LMA). This project will apply transcriptomics and proteomics to measure the expression of the biomolecules associated with PHS and LMA, generating fundamental knowledge of grain molecular physiology that addresses a significant knowledge gap. The project will deliver tools capable of differentiating these conditions, thereby minimising economic losses. A better understanding of the genetic basis of PHS and LMA will lay the foundation for advanced breeding aiming to eliminate these.
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    Active Funded Activity

    Linkage Projects - Grant ID: LP200100547

    Funder
    Australian Research Council
    Funding Amount
    $661,039.00
    Summary
    Developing strong restorer-of-fertility genes for hybrid wheat breeding. Hybrid wheat varieties yield 10-15% more than conventional lines but a cost-effective system to produce hybrid seeds on a commercial scale is missing. This project aims to deliver such a system for use in hybrid wheat breeding programmes. The outcome will be ultimately higher wheat yield gains in Australia and worldwide. Higher and more stable yields will contribute to higher food security for the growing human population.
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    Showing 1-5 of 5 Funded Activites

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