63,148 results
Industry
Industry
PROJECT NUMBER • 2018-154
PROJECT STATUS:
COMPLETED

A market research-driven and co-management approach to developing an industry strategy for the SA Charter Boat Fishery

This project investigated the South Australian Charter Boat Fishery by conducting analyses to identify potential actions for growth to counter the declining level of activity and profitability in the industry. The SA Charter industry has shown declining in trends in economic returns and...
ORGANISATION:
BDO EconSearch

Agrifutures: FRDC Contribution: Phase 2 of $100 billion growth strategy

Project number: 2018-153
Project Status:
Completed
Budget expenditure: $10,000.00
Principal Investigator: Jenny Medway
Organisation: AgriFutures Australia
Project start/end date: 13 Nov 2018 - 29 Jun 2019
Contact:
FRDC

Need

Part of a RDC collaboration

Objectives

1. To provide an RDC contribution

Final report

ISBN: 978-1-76053-046-4
Author: ACIL Allen Consulting
Final Report • 2019-08-01 • 9.18 MB
2018-153-DLD.pdf

Summary

In 2017, the National Farmers’ Federation announced a vision for Australian agriculture to exceed a farm gate value of  $100 billion by 2030. 
AgriFutures Australia commissioned ACIL Allen to:
Establish a baseline projection which estimated a farm-gate value of $84.3 billion by 2030, $15.7 billion below the target.
Investigate what opportunities and  barriers impact agriculture’s ability to exceed the target and deliver enduring profitability.
People
PROJECT NUMBER • 2018-150
PROJECT STATUS:
COMPLETED

Attendance at the Annual Session of the Western and Central Pacific Fisheries Commission (WCPFC) - 4-9 December 2018 in Honolulu, USA

This report is an overview of my attendance at the Western and Central Pacific Fisheries Commission Meeting 15 Honolulu, Hawaii, USA 9–16 December 2018 which was made possible through a FRDC Development Award. The report includes information on: (i) what issues were discussed at the meeting,...
ORGANISATION:
Narooma Seafood Direct
People
PROJECT NUMBER • 2018-149
PROJECT STATUS:
COMPLETED

2019 review of the FRDC investment in People Development

FRDC has a significant and long-term commitment to supporting the development of people in fisheries and aquaculture. The current guide for investment is the People Development Program Plan 2013-2015. This review has been undertaken to consider progress against that Plan and to provide advice about...
ORGANISATION:
Anwen Lovett Consulting
Environment

Diagnostic detection of aquatic pathogens using real-time next generation sequencing

Project number: 2018-147
Project Status:
Current
Budget expenditure: $216,000.00
Principal Investigator: David Cummins
Organisation: CSIRO Australian Animal Health Laboratory
Project start/end date: 30 Jun 2019 - 28 Oct 2021
Contact:
FRDC

Need

Current diagnostic programs generally rely on highly -specific assays for pathogen detection. While these techniques are invaluable, they are one dimensional and do not provide detailed information critical to a disease investigation. These gaps include the inability to detect unknown pathogens and potential variants of know pathogens and provide no additional genomic or transcriptomic data. Moreover, samples must be shipped to trained personnel in a laboratory, further delaying the time to diagnosis. The MinION, on the other hand, can theoretically detect any pathogen and can potentially be deployed to the field. Moreover, the MinION can rapidly generate full-length genomes, allowing for epidemiological tracking of viral or bacterial strains in near real-time. Such rapid data, which cannot be obtained as quickly using existing methods, are vital if the intention is to intervene in an outbreak and reduce impacts on the productivity and profitability of aquaculture facilities. For example, a rapid, early diagnosis may allow mitigating actions to be taken on-farm, such as the diversion of intake water, movement restrictions of stock and the isolation of infected ponds.
These qualities make the MinION an attractive complimentary platform to fill several gaps in the data obtained during disease outbreak investigations, or routine diagnostics, and potentially for use in the field. However, results from the misuse or lack of understanding of the technology could also have adverse regulatory implications for aquaculture industries. For example, without appropriate guidelines, an inexperienced diagnostician may misinterpret a distant DNA match in a pathogen database as a significant result, this may create unwanted attention to industry and potential stock destruction or changes to disease status that are unjustified. Thus, it is critical that the MinION is evaluated at the Australian Animal Health Laboratory, and guidelines and procedures are developed for accurate diagnostic evaluations. The activities detailed in this application will establish the feasibility of using the MinION for diagnostic applications, and ensure that the data is reliably generated and interpreted appropriately.

Objectives

1. Evaluate if MinION data meets or exceeds the data obtained using established laboratory-based NGS platforms. Objectives (1) and (2) align with Methods section (1).The first objective of this project is to demonstrate if the MinION can obtain quality genome assemblies of known pathogens, such as WSSV, AHPND, OsHV-1 and HaHV that have been created using existing NGS technology. Moreover, determine if the MinION is capable of producing a diagnostic result more rapidly and with greater confidence than traditional techniques. STOP/GO POINT: If MinION data does not produce reliable genome assemblies, no improvement in genome quality, or is significantly more laborious to set-up/run or analyse than existing NGS technologies, do not proceed with objective 2.
2. Evaluate the performance of the MinION using existing diagnostic extraction techniques and produce robust methods and protocols for sample preparation, sequencing and data analysis. This objective will optimise MinION protocols for sample pre-processing, optimal sequencing conditions, and data post-processing. We will then evaluate the MinION data produced from a range of aquatic organisms against data produced using traditional techniques from the same samples. STOP/GO POINT: If after these optimisations, the MinION cannot detect pathogens as reliably as traditional techniques, do not proceed with objective 3.
3. Compare the applicability of MinION to standard molecular assays for identification of pathogens in diagnostic samples. Objective (3) is aligned with Methods section (2).In this objective, diagnostic samples will be tested using existing diagnostics tools (qPCR, cPCR) and MinION sequencing. Analysis between the methods will be detailed, including time to result, pathogen identity and genomic information. This objective will not only provide an insight into real-time sequencing for diagnostics, but in addition the feasibility of MinION technology for field application in the future.
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