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INTRODUCTION

Climate change and Australian marine and freshwater environments, fishes and fisheries: introduction

John D. Koehn
+ Author Affiliations
- Author Affiliations

A Arthur Rylah Institute for Environmental Research, Department of Sustainability and Environment, 123 Brown Street, Heidelberg, Vic. 3084, Australia.

B Email: john.koehn@dse.vic.gov.au

Marine and Freshwater Research 62(9) 981-983 https://doi.org/10.1071/MF11152
Published: 21 September 2011

Additional keywords: Australia, climate, estuaries, fish, fisheries, freshwater, impacts, Indo-Pacific, marine.

Introduction

There are worldwide concerns over the effects of climate change on both environments and human communities, with a need to better understand the range of existing and potential impacts. The Earth’s climate has changed rapidly in the past few decades (Steffen 2009), largely caused by human activities (IPCC 2007). Climate change is a global problem that will require global solutions, and these will take time both to achieve and take effect. Until then, there is a need for prioritised management actions in the form of species- and/or site-specific adaptations to changed climatic conditions. Although there is a recognised need to use the best available science to support evidence-based policy and management (Ryder et al. 2010), there is typically a lack of uptake of science into conservation management (Koehn 2004), with the effective translation of scientific findings into policy and on-ground practice still limited, especially in freshwater science (Lake et al. 2010). The political debate that surrounds climate change can cloud scientific findings and there is a need for clear scientific messages to politicians, the public and resource managers on climate change (see Australian Academy of Science 2010) and its impacts (see papers in this Special Issue).

Climate change is already affecting many aspects of marine and freshwater ecosystems, their fishes and fisheries, and the human uses of them. This includes commercial and subsistence fisheries and the people who rely on them (Bell et al. 2009) as well as non-market benefits such as biodiversity and ecosystem services. These latter benefits are often neglected in economic evaluations. Importantly, these impacts will not only be for today but also into the future. Climate-change impacts are not the only stressors to aquatic ecosystems, and in many cases, will not be the primary threat to fish or fisheries. However, an understanding of how climate change might interact with these other stressors is crucial for management and protection of biodiversity and ecosystem goods and services. Papers in this Special Issue explore these complex inter-relationships for Australian marine, estuarine and freshwater systems.


Climate change, fish and fisheries in Australia

Australia is a large, generally dry continent that spans tropical to temperate zones. It has a long continuous coastline but few mountains, limiting opportunities for cool-climate freshwater species to move to higher altitudes to compensate for increasing temperatures (Koehn et al. 2011). Australia has a valuable marine fisheries zone, high levels of tourism in coastal areas (Koehn et al. 2011) and angling is a popular recreational pastime, particularly in freshwater, estuarine and inshore marine environments (Henry and Lyle 2003). Whereas some attention has been paid to the impacts of climate change on marine areas (Poloczanska et al. 2007), particularly those with high profiles such as corals and the Great Barrier Reef (see Munday et al. 2008; Pratchett et al. 2011), freshwater ecosystems may be more vulnerable. Drought and increased climatic variability, including intense floods and storms, threaten Australia’s endemic and depauperate freshwater fish communities (Allen et al. 2002; Pusey et al. 2004), which have large numbers of species of conservation concern (Lintermans 2010). Australian rainfall patterns and river flows are highly variable (Walker et al. 1995), complicating predictions of future changes (Lough and Hobday 2011). Australia’s freshwater and estuarine fishes and their habitats have suffered considerable degradation in many regions (Gillanders et al. 2011; Morrongiello et al. 2011; Pratchett et al. 2011) and have been already affected by many other threats that have led to range reductions and reduced and fragmented populations.

Some considerations have already been given to climate-change impacts on Australian biodiversity (Lindenmayer et al. 2010), water resources (Bates et al. 2008) and the management of rivers and wetlands (Kingsford 2011). In particular, this has focussed on water management (Lester et al. 2011; Pittock and Finlayson 2011; Pittock and Hartman 2011), setting priorities (Crook et al. 2010) and developing adaptation strategies (Aldous et al. 2011). It is important that prioritisation be given to the management of species, locations and ecosystems judged to be most vulnerable to the impacts of climate change (see Koehn et al. 2011).


Papers in this Special Issue

This Special Issue presents 12 papers that resulted from the Australian Society for Fish Biology conference symposium on ‘Climate change and the aquatic environment: the future for fish and fisheries’ held in Melbourne in July 2010. The symposium aimed to summarise the effects of climate change across freshwater, estuarine and marine habitats, and identify options for mitigation, adaptation and management in Australia. This cross-disciplinary approach covered all habitats and how they may be affected, discussing parallels and differences among ecosystems, their key attributes and the impacts on them (Koehn et al. 2011).

The papers in this Special Issue on climate change provide up-to-date knowledge and predictions, highlight priority areas for research and assess models for improved management adaptations for aquatic ecosystems, fish and fisheries in the Australian region. Current changes in climate are summarised by Lough and Hobday (2011), followed by modelled projections for Australian aquatic environments (Hobday and Lough 2011), range shifts for Australian fishes (Booth et al. 2011) and predicted freshwater fish distributions in response to climate change (Bond et al. 2011). Plagányi et al. (2011) describes an holistic approach to modelling ecosystems and their dependant Australian and Pacific communities. Direct impacts such as the effects of global warming and ocean acidification on fish reproduction and early life histories are explored (Pankhurst and Munday 2011), as are indirect impacts such as the changes to and loss of critical fish habitats, using the Great Barrier Reef and the Murray–Darling Basin as examples (Pratchett et al. 2011). Impacts and adaptations for Australian freshwater fishes (Morrongiello et al. 2011), aquatic ecosystems of the Murray–Darling Basin (Balcombe et al. 2011) and estuaries (Gillanders et al. 2011) will differ across populations, species and ecosystems, with some complex indirect impacts causing unexpected outcomes (Koehn et al. 2011).


Prognosis

Climate changes are evident in Australia and will be sustained and ongoing. They are already affecting fish and fisheries and there is a sense of urgency to recognise and manage these problems. Although there is a continuing need to raise political awareness of climate change and to take actions to reduce greenhouse gases, it is more important to undertake management actions to adapt to this changed climate regime. This management must be in conjunction with management for existing stressors, including fishery and water extraction.

We must accept that there are many uncertainties in the likely outcomes from this changed climate regime. Models can be used to help provide predictions and set priorities. Such models need to be based on the best available science and data, be adaptive and include fisheries, environmental, socioeconomic and political layers. Papers in this Special Issue aim to summarise the best available science on climate-change effects on fish and ecosystems of Australian freshwaters, estuaries and oceans to complement future effective management and modelling of this global crisis.



References

Aldous, A., Fitzsimons, J., Richter, B., and Bach, L. (2011). Droughts, floods and freshwater ecosystems: evaluating climate change impacts and developing adaptation strategies. Marine and Freshwater Research 62, 223–231.
Droughts, floods and freshwater ecosystems: evaluating climate change impacts and developing adaptation strategies.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3MXjsVKktrw%3D&md5=6a1ffe0cf925eda9340ec29be4eee8f8CAS |

Allen, G. R., Midgely, S. H., and Allen, M. (2002). ‘Field Guide to the Freshwater Fishes of Australia.’ (Western Australia Museum: Perth.)

Australian Academy of Science (2010). ‘The Science of Climate Change. Questions and Answers.’ (Australian Academy of Science: Canberra.) Available at www.science.org.au [accessed 10 June 2011].

Balcombe, S. R., Sheldon, F., Capon, S. J., Bond, N. R., Hadwen, W. L., Marsh, N., and Bernays, S. J. (2011). Climate-change threats to native fish in degraded rivers and floodplains of the Murray–Darling Basin, Australia. Marine and Freshwater Research 62, 1099–1114.
Climate-change threats to native fish in degraded rivers and floodplains of the Murray–Darling Basin, Australia.Crossref | GoogleScholarGoogle Scholar |

Bates, B. C., Kundzewicz, Z. W., Wu, S., and Palutikof, J. P. (Eds) (2008). ‘Climate Change and Water. Paper of the Intergovernmental Panel on Climate Change.’ (IPCC Secretariat: Geneva.)

Bell, J. D., Kronen, M., Vunisea, A., Nash, W. J., Keeble, G., Demmke, A., Pontifex, S., and Andréfouët, S. (2009). Planning the use of fish for food security in the Pacific. Marine Policy 33, 64–76.
Planning the use of fish for food security in the Pacific.Crossref | GoogleScholarGoogle Scholar |

Bond, N., Thomson, J., Reich, P., and Stein, J. (2011). Using species distribution models to infer potential climate change-induced range shifts of freshwater fish in south-eastern Australia. Marine and Freshwater Research 62, 1043–1061.
Using species distribution models to infer potential climate change-induced range shifts of freshwater fish in south-eastern Australia.Crossref | GoogleScholarGoogle Scholar |

Booth, D. J., Bond, N., and Macreadie, P. (2011). Detecting range shifts among Australian fishes in response to climate change. Marine and Freshwater Research 62, 1027–1042.
Detecting range shifts among Australian fishes in response to climate change.Crossref | GoogleScholarGoogle Scholar |

Crook, D. A., Reich, P., Bond, N. R., McMaster, D., Koehn, J. D., and Lake, P. S. (2010). Using biological information to support proactive strategies for managing freshwater fish during drought. Marine and Freshwater Research 61, 379–387.
Using biological information to support proactive strategies for managing freshwater fish during drought.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3cXjvFSjs7g%3D&md5=80d269acaf21f989f18f33c88f071d64CAS |

Gillanders, B. M., Elsdon, T. S., Halliday, I. A., Jenkins, G. P., Robins, J. B., and Valesini, F. J. (2011). Potential effects of climate change on Australian estuaries and fish-utilising estuaries: a review. Marine and Freshwater Research 62, 1115–1131.
Potential effects of climate change on Australian estuaries and fish-utilising estuaries: a review.Crossref | GoogleScholarGoogle Scholar |

Henry, G. W., and Lyle, J. M. (2003). The National Recreational and Indigenous Fishing Survey. FRDC project no. 99/158. Australian Government Department of Agriculture, Fisheries and Forestry, Canberra.

Hobday, A. J., and Lough, J. M. (2011). Projected climate change in Australian marine and freshwater environments. Marine and Freshwater Research 62, 1000–1014.
Projected climate change in Australian marine and freshwater environments.Crossref | GoogleScholarGoogle Scholar |

IPCC (2007). ‘Climate Change 2007: The Physical Science Basis. Contribution of Working Group I to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change.’ (Cambridge University Press: Cambridge, UK.)

Kingsford, R. T. (2011). Conservation management of rivers and wetlands under climate change – a synthesis. Marine and Freshwater Research 62, 217–222.
Conservation management of rivers and wetlands under climate change – a synthesis.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3MXjsVKksb0%3D&md5=f827938094a01b252709717279509058CAS |

Koehn, J. D. (2004). Rehabilitating fish habitats in Australia: improving integration of science and management by agencies and the community. Ecological Management & Restoration 5, 211–213.
Rehabilitating fish habitats in Australia: improving integration of science and management by agencies and the community.Crossref | GoogleScholarGoogle Scholar |

Koehn, J. D., Hobday, A. J., Pratchett, M. S., and Gillanders, B. M. (2011). Climate change and Australian marine and freshwater environments, fishes and fisheries: synthesis and options for adaptation. Marine and Freshwater Research 62, 1148–1164.
Climate change and Australian marine and freshwater environments, fishes and fisheries: synthesis and options for adaptation.Crossref | GoogleScholarGoogle Scholar |

Lake, P. S., Likens, G. E., and Ryder, D. S. (2010). Integrating science, policy and management of rivers: Peter Cullen’s legacy. Marine and Freshwater Research 61, 733–735.
Integrating science, policy and management of rivers: Peter Cullen’s legacy.Crossref | GoogleScholarGoogle Scholar |

Lester, R. E., Webster, I. T., Fairweather, P. G., and Young, W. J. (2011). Linking water-resource models to ecosystem-response models to guide water-resource planning – an example from the Murray–Darling Basin, Australia. Marine and Freshwater Research 62, 279–289.
Linking water-resource models to ecosystem-response models to guide water-resource planning – an example from the Murray–Darling Basin, Australia.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3MXjsVKktr8%3D&md5=ba2a4dd45b5b5d1472192f2cb3d399bdCAS |

Lindenmayer, D. B., Steffen, W., Burbidge, A. A., Hughes, L., Kitching, R. L., Musgrave, W., Stafford Smith, M., and Werner, P. A. (2010). Conservation strategies in response to rapid climate change: Australia as a case study. Biological Conservation 143, 1587–1593.
Conservation strategies in response to rapid climate change: Australia as a case study.Crossref | GoogleScholarGoogle Scholar |

Lintermans, M. (2010). Conservation status of Australian fishes – 2010. Australian Society for Fish Biology Newsletter 40, 79–82.

Lough, J. M., and Hobday, A. J. (2011). Observed climate change in Australian marine and freshwater environments. Marine and Freshwater Research 62, 984–999.
Observed climate change in Australian marine and freshwater environments.Crossref | GoogleScholarGoogle Scholar |

Morrongiello, J. R., Beatty, S. J., Bennett, J. C., Crook, D. A., Ikedife, D. N. E. N., Kennard, M. J., Kerezsy, A., Lintermans, M., McNeil, D. G., Pusey, B. J., and Rayner, T. (2011). Climate change and its implications for Australia’s freshwater fish. Marine and Freshwater Research 62, 1082–1098.
Climate change and its implications for Australia’s freshwater fish.Crossref | GoogleScholarGoogle Scholar |

Munday, P. L., Jones, G. P., Pratchett, M. S., and Williams, A. (2008). Climate change and the future for coral reef fishes. Fish and Fisheries 9, 261–285.
Climate change and the future for coral reef fishes.Crossref | GoogleScholarGoogle Scholar |

Pankhurst, N. W., and Munday, P. L. (2011). Effects of climate change on fish reproduction and early life history life stages. Marine and Freshwater Research 62, 1015–1026.
Effects of climate change on fish reproduction and early life history life stages.Crossref | GoogleScholarGoogle Scholar |

Pittock, J., and Finlayson, C. M. (2011). Australia’s Murray–Darling Basin: freshwater ecosystem conservation options in an era of climate change. Marine and Freshwater Research 62, 232–243.
Australia’s Murray–Darling Basin: freshwater ecosystem conservation options in an era of climate change.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3MXjsVKksbo%3D&md5=c87b710ca2ef52d8bbf6ae5aad474251CAS |

Pittock, J., and Hartmann, J. (2011). Taking a second look: climate change, periodic relicensing and improved management of dams. Marine and Freshwater Research 62, 312–320.
Taking a second look: climate change, periodic relicensing and improved management of dams.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3MXjsVKksbc%3D&md5=ea05976f48f74b372b0ea157dcb360dfCAS |

Plagányi, E. E., Bell, J. D., Bustamante, R. H., Dambacher, J. M., Dennis, D. M., Dichmont, C. M., Dutra, L. X. C., Fulton, E. A., Hobday, A. J., van Putten, E. I., Smith, F., Smith, A. D. M., and Zhou, S. (2011). Modelling climate-change effects on Australian and Pacific aquatic ecosystems: a review of analytical tools and management implications. Marine and Freshwater Research 62, 1132–1147.
Modelling climate-change effects on Australian and Pacific aquatic ecosystems: a review of analytical tools and management implications.Crossref | GoogleScholarGoogle Scholar |

Poloczanska, E. S., Babcock, R. C., Butler, A., Hobday, A. J., Hoegh-Guldberg, O., Kunz, T. J., Matear, R., Milton, D. A., Okey, T. A., and Richardson, A. J. (2007). Climate change and Australian marine life. Oceanography and Marine Biology: An Annual Review 45, 409–480.

Pratchett, M. S., Bay, L. K., Gehrke, P. C., Koehn, J. D., Osborne, K., Pressey, R. L., Sweatman, H. P. A., and Wachenfeld, D. (2011). Contribution of climate change to degradation and loss of critical fish habitats in Australian marine and freshwater environments. Marine and Freshwater Research 62, 1062–1081.
Contribution of climate change to degradation and loss of critical fish habitats in Australian marine and freshwater environments.Crossref | GoogleScholarGoogle Scholar |

Pusey, B. J., Kennard, M. J., and Arthington, A. H. (2004). Freshwater fishes of north-eastern Australia. (CSIRO Publishing: Melbourne.)

Ryder, D. S., Tomlinson, M., Gawne, B., and Likens, G. E. (2010). Defining and using ‘best available science’: a policy conundrum for the management of aquatic ecosystems. Marine and Freshwater Research 61, 821–828.
Defining and using ‘best available science’: a policy conundrum for the management of aquatic ecosystems.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3cXptFGrsLs%3D&md5=44324ac3bde664d0498b2558b83d3779CAS |

Steffen, W. L. (2009). ‘Climatic Change 2009: Faster Change and More Serious Risks.’ (Australian Government, Department of Climate Change: Canberra.)

Walker, K. F., Sheldon, F., and Puckeridge, J. T. (1995). A perspective on dryland river ecosystems. Regulated Rivers: Research and Management 11, 85–104.