Coping with flooding: nutrient transport in oxygen-deprived roots. Flooding damages plants by reducing oxygen supply to roots. The project will study effects of low oxygen on nutrient transport by roots. Understanding root functioning during low oxygen will enhance knowledge of plant acclimation to soil water logging. The project will contribute to the National Goal of 'Responding to Climate Change and Variability'.
Empowering Aboriginal & Torres Strait Islander Girls, Changing Communities. This project applies Indigenous knowledges to develop new understandings and insights in the area of Aboriginal and Torres Strait Islander girls’ education. Expected outcomes of the project include: the development of a national framework that supports the education of girls and acknowledges the importance of self-determination, culture, gender and place in creating life changing educational opportunities; addressing Clo ....Empowering Aboriginal & Torres Strait Islander Girls, Changing Communities. This project applies Indigenous knowledges to develop new understandings and insights in the area of Aboriginal and Torres Strait Islander girls’ education. Expected outcomes of the project include: the development of a national framework that supports the education of girls and acknowledges the importance of self-determination, culture, gender and place in creating life changing educational opportunities; addressing Close the Gap targets; and creating broader long lasting positive changes regarding access, participation and success for Aboriginal and Torres Strait Islander students. The outcomes of this project can provide significant benefits to the broad Australian schooling system.Read moreRead less
Reducing environmental footprint by improving phosphorous use efficiency. While modern agriculture relies heavily on the use of phosphorous fertilizers, most of them are not used by plants and lost in runoff, resulting in a massive environmental damage through contamination of waterways (termed eutrophication). This project takes advantage of an untapped resource - a unique collection of Tibetan wild barley genotypes, to reveal key traits that confer superior phosphorus use efficiency in wild ba ....Reducing environmental footprint by improving phosphorous use efficiency. While modern agriculture relies heavily on the use of phosphorous fertilizers, most of them are not used by plants and lost in runoff, resulting in a massive environmental damage through contamination of waterways (termed eutrophication). This project takes advantage of an untapped resource - a unique collection of Tibetan wild barley genotypes, to reveal key traits that confer superior phosphorus use efficiency in wild barley and identify appropriate candidate genes and their position on chromosomes for further incorporating these traits into commercial barley cultivars. This will reduce the environmental footprint of modern agricultural practices on terrestrial and aquatic ecosystems without compromising food security.Read moreRead less
Linkage Infrastructure, Equipment And Facilities - Grant ID: LE180100048
Funder
Australian Research Council
Funding Amount
$499,899.00
Summary
Foundations of the common law library. This project aims to build a comprehensive, historical, legal resource for the whole common law world, 1215-1914. The free access ‘Foundations of Common Law Library’ will include reported cases from superior courts, and selected others, in all common law jurisdictions. Databases of other key materials such as treatises, legislation, and treaties, will also be added wherever possible. Databases of case law extracted from newspaper reports, prior to formal la ....Foundations of the common law library. This project aims to build a comprehensive, historical, legal resource for the whole common law world, 1215-1914. The free access ‘Foundations of Common Law Library’ will include reported cases from superior courts, and selected others, in all common law jurisdictions. Databases of other key materials such as treatises, legislation, and treaties, will also be added wherever possible. Databases of case law extracted from newspaper reports, prior to formal law reporting will be included. Citations for all documents added will expand greatly an automated international historical citator to the whole of the common law world, linking past and present.Read moreRead less
Linkage Infrastructure, Equipment And Facilities - Grant ID: LE150100051
Funder
Australian Research Council
Funding Amount
$410,000.00
Summary
The Australasian Legal History Libraries: Stage II. The Australasian legal history libraries stage II: Australia's leading legal historians will partner with the Australasian Legal Information Institute (AustLII) to create a massive expansion of free online access to Australasian legal history through digitisation and data aggregation. The Legal History Libraries on AustLII will become a comprehensive trans-Tasman collection from 1788-1999, including all reported case series and those from colon ....The Australasian Legal History Libraries: Stage II. The Australasian legal history libraries stage II: Australia's leading legal historians will partner with the Australasian Legal Information Institute (AustLII) to create a massive expansion of free online access to Australasian legal history through digitisation and data aggregation. The Legal History Libraries on AustLII will become a comprehensive trans-Tasman collection from 1788-1999, including all reported case series and those from colonial newspaper reports, and all Acts enacted, plus key collections of historical Bills, Gazettes, legal commentaries, and Parliamentary reports. The Libraries are expected to double in size from their current 50,000 items of cases and legislation. The Libraries will enable previously impractical access, comparative research, and international collaborations.Read moreRead less
How plants open up: revealing the evolution of stomatal opening mechanisms. This project aims to identify novel and conserved mechanisms that drive the opening of stomata – plant pores that enable CO2 acquisition for photosynthesis. Stomatal movements strongly affect plant productivity and water use efficiency and have profoundly influenced the earth’s climate and terrestrial ecology. This project will address critical gaps in our understanding of how plants open stomata in response to their env ....How plants open up: revealing the evolution of stomatal opening mechanisms. This project aims to identify novel and conserved mechanisms that drive the opening of stomata – plant pores that enable CO2 acquisition for photosynthesis. Stomatal movements strongly affect plant productivity and water use efficiency and have profoundly influenced the earth’s climate and terrestrial ecology. This project will address critical gaps in our understanding of how plants open stomata in response to their environment and the evolutionary history of the genes controlling this fundamental process. A major expected outcome is knowledge of the diversity of stomatal opening pathways, which should ultimately lead to improved predictions of plant responses to environmental change and assist future targeted modification of plant growth.Read moreRead less
ARC Australia-New Zealand Research Network for Vegetation Function. Plant species vary widely in quantitative functional traits, and in their relations to climate, soils and geography. Global generalizations are emerging. Vegetation Function network will reach from plant function into genomics and crop breeding, into palaeoecology and vegetation history, into landscape management for carbon, water and salinity outcomes, into forecasting future ecosystems under global change, and into phylogeny, ....ARC Australia-New Zealand Research Network for Vegetation Function. Plant species vary widely in quantitative functional traits, and in their relations to climate, soils and geography. Global generalizations are emerging. Vegetation Function network will reach from plant function into genomics and crop breeding, into palaeoecology and vegetation history, into landscape management for carbon, water and salinity outcomes, into forecasting future ecosystems under global change, and into phylogeny, ecoinformatics and evolutionary theory. Across this span, working groups will target nine identified opportunities for breakthrough research. Each research target needs input from two or more disciplines. Together, the nine targets link across disciplines, as a network that spans from genomic to planetary scales.Read moreRead less
Cellular automata model of forest stands to predict size-class distribution and survival. Existing forest growth models predict well stand level processes such as growth. However, they provide little information on forest structure and how this affects commercial forest products, risks of growing plantations and stand dynamics that determine carbon sequestration and water-use and result in age-related decline in productivity and self-thinning. By using newly developed technology to quantify in ....Cellular automata model of forest stands to predict size-class distribution and survival. Existing forest growth models predict well stand level processes such as growth. However, they provide little information on forest structure and how this affects commercial forest products, risks of growing plantations and stand dynamics that determine carbon sequestration and water-use and result in age-related decline in productivity and self-thinning. By using newly developed technology to quantify inter-tree competition, tree level resource supply, between tree genetic differences and the importance of chance events this project will draw on complexity theory to develop an innovative model that partitions stand level production to forecast the growth and size of individual trees.Read moreRead less
Understanding the biological functions of the karrikin-responsive signaling system of plants in growth, development and responses to the environment. A new signalling system in plants, related to that of strigolactone hormones but evolutionarily more ancient and functionally distinct, has been discovered. It is defined by the Karrkin-Insensitive-2 (KAI2) protein discovered by its ability to confer responsiveness to karrikins from bushfires. The KAI2 system influences seed germination, and develo ....Understanding the biological functions of the karrikin-responsive signaling system of plants in growth, development and responses to the environment. A new signalling system in plants, related to that of strigolactone hormones but evolutionarily more ancient and functionally distinct, has been discovered. It is defined by the Karrkin-Insensitive-2 (KAI2) protein discovered by its ability to confer responsiveness to karrikins from bushfires. The KAI2 system influences seed germination, and development of seedlings, leaves and potentially roots. This project will use KAI2 mutants and transgenic plants to define the biological functions of KAI2 signalling, and its interactions with other signalling systems. New genes central to KAI2 signalling and responses will be identified for functional analysis. The research will reveal the significance of this new signalling system in plant biology. Read moreRead less
Linkage Infrastructure, Equipment And Facilities - Grant ID: LE210100155
Funder
Australian Research Council
Funding Amount
$909,079.00
Summary
Advancing 4D fluorescence microscopy within Australia. This multi-institutional proposal aims to establish a state-of-the-art Lightsheet microscope facility in South Australia with enhanced analysis infrastructure and a national user support network. Expectations are, this will transform researcher outcomes for multiple disciplines by facilitating high-resolution four-dimensional interrogation of novel biological processes. Significant benefits will include the ability to image deep within livin ....Advancing 4D fluorescence microscopy within Australia. This multi-institutional proposal aims to establish a state-of-the-art Lightsheet microscope facility in South Australia with enhanced analysis infrastructure and a national user support network. Expectations are, this will transform researcher outcomes for multiple disciplines by facilitating high-resolution four-dimensional interrogation of novel biological processes. Significant benefits will include the ability to image deep within living tissue over long time-scales without inducing phytotoxicity to produce high-impact fundamental and translatable outcomes, the development of novel probes and methodologies, new cross-disciplinary collaborations, and new and unique funding, student training and public engagement opportunities.Read moreRead less