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Ecology, management and conservation in natural and modified habitats
RESEARCH ARTICLE

Ranking and mapping koala habitat quality for conservation planning on the basis of indirect evidence of tree-species use: a case study of Noosa Shire, south-eastern Queensland

John Callaghan A B E , Clive McAlpine C D , David Mitchell A , Jane Thompson A , Michiala Bowen C , Jonathan Rhodes C D , Carol de Jong A , Renee Domalewski A and Alison Scott A
+ Author Affiliations
- Author Affiliations

A Australian Koala Foundation, GPO Box 2659, Brisbane, Qld 4001, Australia.

B Gold Coast City Council, PO Box 5042, Gold Coast Mail Centre, Qld 9729, Australia.

C The University of Queensland, Landscape Ecology and Conservation Group, Centre for Spatial Environmental Research, School of Geography, Planning and Environmental Management, Brisbane, Qld 4072, Australia.

D The University of Queensland, The Ecology Centre, Brisbane, Qld 4072, Australia.

E Corresponding author. Email: jcallaghan@goldcoast.qld.gov.au

Wildlife Research 38(2) 89-102 https://doi.org/10.1071/WR07177
Submitted: 21 November 2007  Accepted: 9 December 2010   Published: 20 April 2011

Abstract

Context: Mapping the habitat and distribution of a species is critical for developing effective conservation plans. Koala (Phascolarctos cinereus, Phascolarctidae) distribution is constrained by the nutritional and shelter requirements provided by a relatively small number of key tree species in any given area. Identifying these key species provides a practical foundation for mapping koala habitat and prioritising areas for conservation.

Aims: To determine key tree species for koalas in Noosa Shire (south-eastern Queensland, Australia) as a basis for mapping koala habitat quality.

Methods: We applied a faecal-pellet survey methodology in 1996/97 to assess evidence of use by koalas of 4031 trees from 96 randomly stratified survey sites across different eucalypt-forest and woodland communities. Results were compared with those from a later survey undertaken in 2001/02 involving 5535 trees from 195 sites that were distributed across broadly similar areas with the aim to investigate aspects of koala landscape ecology.

Key results: A total of 66.7% of the 1996/97 survey sites contained koala faecal pellets, recorded under 953 eucalypt trees (14 species) and 1670 non-eucalypt trees (27 species). The proportion of trees at a given survey site that had koala faecal pellets at the base ranged from 2.2% to 94.7% (mean = 31.13 ± 2.59% s.e.). For the 2001/02 dataset, koala pellets were found at 55.4% of sites, from 794 eucalypt and 2240 non-eucalypt trees. The proportion of trees with pellets ranged from 3% to 80% (mean = 21.07 ± 1.77% s.e.). Both the 1996/97 and 2001/02 surveys identified the same three tree species (forest red gum, Eucalyptus tereticornis, swamp mahogany, E. robusta, and tallowwood, E. microcorys) as the highest-ranked for koala use in the study area. Three additional species (red mahogany, E. resinifera, small-fruited grey gum, E. propinqua, and grey ironbark, E. siderophloia) were identified in the 1996/97 surveys as key eucalypt species. Of the non-eucalypts in the 1996/97 dataset, coast cypress pine (Callitris columellaris) and broad-leaved paperbark (Melaleuca quinquenervia) ranked highest for use by koalas, followed by pink bloodwood (Corymbia intermedia) and brush box (Lophostemon confertus). White bottlebrush (Callistemon salignus), hard corkwood (Endiandra sieberi), M. quinquenervia and C. intermedia ranked highest in the 2001/02 dataset. The findings showed significantly greater use of larger eucalypts (i.e. 300-mm to >600-mm diameter at breast height).

Conclusions: The identified key eucalypt species, being the critical limiting resource for koalas, were used to assign koala habitat-quality classes to mapped regional ecosystem types to create a Koala Habitat Atlas (KHA) for Noosa Shire. The combined two highest quality classes based on abundance of the key eucalypt species comprised only 15.7% of the total land area of the Shire.

Implications: The KHA approach provides a practical and repeatable method for developing koala habitat-suitability mapping for national-, regional- and local-scale conservation and recovery planning purposes.

Additional keywords: habitat mapping, habitat quality, key eucalypt species, koala, Koala Habitat Atlas, Noosa, Phascolarcotos cinereus.


References

Benson, J. S., and Ashby, E. M. (2000). Vegetation of the Guyra 1 : 100 000 map sheet New England Bioregion, New South Wales. Cunninghamia 6, 747–872.

Berenson, M. L., Levine, D. M., and Rindskopf, D. (1988). ‘Applied Statistics – A first Course.’ (Prentice-Hall Inc.: Upper Saddle River, NJ.)

Brady, N. C., and Weil, R. R. (1999). ‘The Nature and Properties of Soils.’ 12th edn. (Prentice-Hall: Upper Saddle River, NJ.)

Braithwaite, L. W., Turner, J., and Kelly, J. (1983). Studies of the arboreal marsupial fauna of eucalypt forests being harvested for woodpulp at Eden, New South Wales. II. Relationship between the fauna density, and measured variables of the habitat. Australian Wildlife Research 10, 231–247.
Studies of the arboreal marsupial fauna of eucalypt forests being harvested for woodpulp at Eden, New South Wales. II. Relationship between the fauna density, and measured variables of the habitat.Crossref | GoogleScholarGoogle Scholar |

Braithwaite, L. W., Dudzinski, M. L., and Turner, J. (1984). Studies of the arboreal marsupial fauna of eucalypt forests being harvested for woodpulp at Eden, New South Wales. III. Relationship between the fauna density, eucalypt occurrence and foliage nutrients, and soil parent materials. Australian Wildlife Research 11, 41–48.
Studies of the arboreal marsupial fauna of eucalypt forests being harvested for woodpulp at Eden, New South Wales. III. Relationship between the fauna density, eucalypt occurrence and foliage nutrients, and soil parent materials.Crossref | GoogleScholarGoogle Scholar |

Clifton, I. D., Ellis, W. A. H., Melzer, A., and Tucker, G. (2007). Water turnover and the northern range of the koala (Phascolarctos cinereus). Australian Mammalogy 29, 85–88.

Cork, S. J., and Foley, W. J. (1991). Digestive and metabolic strategies of arboreal mammalian folivores in relation to chemical defences in temperate and tropical forests. In ‘Plant Defences Against Mammalian Herbivory’. (Eds R. T. Palo and C. T. Robbins.) pp. 133–166. (CRC Press: Boca Raton, FL.)

Cork, S. J., and Sanson, G. D. (1990). Digestion and nutrition in the koala: a review. In ‘Biology of the Koala’. (Eds A. K. Lee, K. A. Handasyde and G. D. Sanson.) pp. 129–144. (Surrey Beatty: Sydney.)

Cork, S. J., Hume, I. D., and Foley, W. J. (2000). Improving habitat models and their utility in koala conservation. Conservation Biology 14, 660–668.
Improving habitat models and their utility in koala conservation.Crossref | GoogleScholarGoogle Scholar |

DeGabriel, J. L., Moore, B. D., Foley, W. J., and Johnson, C. N. (2009). The effect of plant defensive chemistry on nutrient availability predict reproductive success in a mammal. Ecology 90, 711–719.
The effect of plant defensive chemistry on nutrient availability predict reproductive success in a mammal.Crossref | GoogleScholarGoogle Scholar | 19341141PubMed |

Department of Natural Resources and Mines. (2002). South-East Queensland Region geoscience data set. SEQ GIS Version 2. Data for exploration and land use. Department of Naturla Resources and Mines, Brisbane.

Ellis, W. A. H., Sullivan, B. J., Lisle, A. T., and Carrick, F. N. (1998). The spatial and temporal distribution of koala faecal pellets. Wildlife Research 25, 663–668.
The spatial and temporal distribution of koala faecal pellets.Crossref | GoogleScholarGoogle Scholar |

Ellis, W. A., Carrick, F., Lundgren, P., Veary, A., and Cohen, B. (1999). The use of faecal cuticle examination to determine the dietary composition of koalas. Australian Zoologist 31, 127–133.

Ellis, W. A. H., Melzer, A., Carrick, F. N., and Hasegawa, M. (2002a). Tree use, diet and home range of the koala (Phascolarctos cinereus) at Blair Athol, central Queensland. Wildlife Research 29, 303–311.
Tree use, diet and home range of the koala (Phascolarctos cinereus) at Blair Athol, central Queensland.Crossref | GoogleScholarGoogle Scholar |

Ellis, W. A., Hale, P. T., and Carrick, F. (2002b). Breeding dynamics of koalas in open woodlands. Wildlife Research 29, 19–25.
Breeding dynamics of koalas in open woodlands.Crossref | GoogleScholarGoogle Scholar |

Hall, L. S., Krausman, P. A., and Morrison, M. L. (1997). The habitat concept and a plea for the use of standard terminology. Wildlife Society Bulletin 25, 173–182.

Hasegawa, M. (1995). Habitat utilisation by koalas (Phascolarctos cinereus) at Point Halloran, Queensland. M.Sc. Thesis, The University of Queensland, Brisbane.

Hindell, M. A., and Lee, A. K. (1987). Habitat use and tree preferences of koalas in a mixed eucalypt forest. Australian Wildlife Research 14, 349–360.
Habitat use and tree preferences of koalas in a mixed eucalypt forest.Crossref | GoogleScholarGoogle Scholar |

Huang, Z., Turner, B. J., Dury, S. J., Wallis, I. R., and Foley, W. J. (2004). Estimating foliage nitrogen concentration from HYMAP data using continuum removal analysis. Remote Sensing of Environment 93, 18–29.
Estimating foliage nitrogen concentration from HYMAP data using continuum removal analysis.Crossref | GoogleScholarGoogle Scholar |

Johnson, D. H. (1980). The comparison of usage and availability measurements for evaluating resource preference. Ecology 61, 65–71.
The comparison of usage and availability measurements for evaluating resource preference.Crossref | GoogleScholarGoogle Scholar |

Kavanagh, R. P., Stanton, M. A., and Brassil, T. E. (2007). Koalas continue to occupy their previous home-ranges after selective logging in CallitrisEucalyptus forest. Wildlife Research 34, 94–107.
Koalas continue to occupy their previous home-ranges after selective logging in CallitrisEucalyptus forest.Crossref | GoogleScholarGoogle Scholar |

Knott, T., Lunney, D., Coburn, D., and Callaghan, J. (1998). An ecological history of koala habitat in Port Stephens Shire and the Lower Hunter on the Central Coast of New South Wales, 1801–1998. Pacific Conservation Biology 4, 354–368.

Lawler, I. R. (1998). Variation in marsupial folivory between and within Eucalyptus species: the role and actions of plant secondary metabolites. Ph.D. Thesis, Australian National University, Canberra.

Lunney, D., Phillips, S., Callaghan, J., and Coburn, D. (1998). Determining the distribution of koala habitat across a shire as a basis for conservation: a case study from Port Stephens, New South Wales. Pacific Conservation Biology 4, 186–196.

Lunney, D., Matthews, A., Moon, C., and Ferrier, S. (2000). Incorporating habitat mapping into practical koala conservation on private lands. Conservation Biology 14, 669–680.
Incorporating habitat mapping into practical koala conservation on private lands.Crossref | GoogleScholarGoogle Scholar |

MapInfo Corporation. (2003). ‘MapInfo Professional. Version 7.5. Release Build 21.’ Available at www.mapinfo.com [accessed August 2004].

Martin, R., and Handasyde, K. (1999). ‘The Koala: Natural History, Conservation and Management.’ 2nd edn. Australian Natural History Series. (University of New South Wales Press: Sydney.)

Matthews, A., Lunney, D., Gresser, S., and Maitz, W. (2007). Tree use by koalas (Phascolarctos cinereus) after fire in remnant coastal forest. Wildlife Research 34, 84–93.
Tree use by koalas (Phascolarctos cinereus) after fire in remnant coastal forest.Crossref | GoogleScholarGoogle Scholar |

McAlpine, C. A., Bowen, M. E., Callaghan, J. G., Lunney, D., Rhodes, J. R., Mitchell, D. L., Pullar, P. V., and Possingham, H. P. (2006a). Testing alternative models for the conservation of koalas in fragmented rural–urban landscapes. Austral Ecology 31, 529–544.
Testing alternative models for the conservation of koalas in fragmented rural–urban landscapes.Crossref | GoogleScholarGoogle Scholar |

McAlpine, C. A., Rhodes, J. R., Callaghan, J. G., Bowen, M. E., Lunney, D., Mitchell, D. L., Pullar, D. V., and Possingham, H. P. (2006b). The importance of forest area and configuration relative to local habitat factors for conserving forest mammals: a case study of koalas in Queensland, Australia. Biological Conservation 132, 153–165.
The importance of forest area and configuration relative to local habitat factors for conserving forest mammals: a case study of koalas in Queensland, Australia.Crossref | GoogleScholarGoogle Scholar |

McAlpine, C. A., Rhodes, J. R., Bowen, M. E., Lunney, D., Callaghan, J. G., Mitchell, D. L., and Possingham, H. P. (2008). Can multiscale models of species’ distribution be generalized from region to region? A case study of the koala. Journal of Applied Ecology 45, 558–567.
Can multiscale models of species’ distribution be generalized from region to region? A case study of the koala.Crossref | GoogleScholarGoogle Scholar |

McKenzie, N., Jacquier, D., Isbell, R., and Brown, K. (2004). ‘Australian Soils and Landscapes: An Illustrated Compendium.’ (CSIRO Publishing: Melbourne.)

Melzer, A. (1995). Aspects of the ecology of the koala, Phascolarctos cinereus (Goldfuss, 1817), in the sub-humid woodlands of central Queensland. Ph.D. Thesis, University of Queensland, St Lucia, Brisbane.

Moore, B. D., and Foley, W. J. (2005). Tree use by koalas in a chemically complex landscape. Nature 435, 488–490.
Tree use by koalas in a chemically complex landscape.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2MXksVeisrk%3D&md5=65eed228ea4a4641218fdf471bb82e0fCAS | 15917807PubMed |

Moore, B. D., Wallis, I. R., Marsh, K. J., and Foley, W. J. (2004). The role of nutrition in the conservation of marsupial folivores of eucalypt forests. In ‘Conservation of Australia’s Forest Fauna’. 2nd edn. (Ed. D. Lunney.) pp. 540–575. (Royal Zoological Society of New South Wales: Sydney.)

Phillips, S., and Callaghan, J. (2000). Tree species preferences of koalas (Phascolarctos cinereus) in the Campbelltown area south-west of Sydney, New South Wales. Wildlife Research 27, 509–516.
Tree species preferences of koalas (Phascolarctos cinereus) in the Campbelltown area south-west of Sydney, New South Wales.Crossref | GoogleScholarGoogle Scholar |

Phillips, S., Callaghan, J., and Thompson, V. (2000). The tree species preferences of koalas (Phascolarctos cinereus) inhabiting forest and woodland communities on Quaternary deposits in the Port Stephens area, New South Wales. Wildlife Research 27, 1–10.
The tree species preferences of koalas (Phascolarctos cinereus) inhabiting forest and woodland communities on Quaternary deposits in the Port Stephens area, New South Wales.Crossref | GoogleScholarGoogle Scholar |

Pulliam, H. R., and Danielson, B. J. (1991). Sources, sinks, and habitat selection: a landscape perspective on population dynamics. American Naturalist 137, S50–S66.
Sources, sinks, and habitat selection: a landscape perspective on population dynamics.Crossref | GoogleScholarGoogle Scholar |

Ramsay, S. (1999). The ecology and dispersal patterns of juvenile koalas, Phascolarctos cinereus, in fragmented habitat. Ph.D. Thesis. University of Sydney, Sydney.

Rhodes, J. R., McAlpine, C. A., Lunney, D., and Possingham, P. (2005). A spatially explicit habitat selection model incorporating home range behaviour. Ecology 86, 1199–1205.
A spatially explicit habitat selection model incorporating home range behaviour.Crossref | GoogleScholarGoogle Scholar |

Rhodes, J. R., Callaghan, J. G., McAlpine, C. A., de Jong, C., Bowen, M. E., Mitchell, D. L., Lunney, D., and Possingham, H. P. (2008). Regional variation in habitat-occupancy thresholds: a warning for conservation planning. Journal of Applied Ecology 45, 549–557.
Regional variation in habitat-occupancy thresholds: a warning for conservation planning.Crossref | GoogleScholarGoogle Scholar |

Rhodes, J.R., Lunney, D., Moon, C., Matthews, A., and McAlpine, C.A. (2011). The consequences of using indirect signs that decay to determine species’ occupancy. Ecography 34, 141–150.
The consequences of using indirect signs that decay to determine species’ occupancy.Crossref | GoogleScholarGoogle Scholar |

Sattler, P. S., and Williams, R. D. (Eds) (1999). ‘The Conservation Status of Queensland’s Bioregional Ecosystems.’ (Environmental Protection Agency: Brisbane.)

Scarth, P., Phinn, S. R., Held, A., and Mitchell, D. (2000). Mapping koala habitat and Eucalyptus trees: integration and scaling of field and airbourne hyperspectral data. In ‘Proceedings of the 10th Australasian Remote Sensing and Photogrammetry Conference, 21–25 August 2000’. [CD-ROM]

Seabrook, L. M., McAlpine, C. A., Phinn, S. R., Callaghan, J., and Mitchell, D. (2003). Landscape legacies: koala habitat change in Noosa Shire, south-east Queensland. Australian Zoologist 32, 446–461.

Sluiter, A. F., Close, R. L., and Ward, S. J. (2002). Koala feeding and roosting trees in the Campbelltown area of New South Wales. Australian Mammalogy 23, 173–175.
Koala feeding and roosting trees in the Campbelltown area of New South Wales.Crossref | GoogleScholarGoogle Scholar |

Smith, A. P. (2004). Koala conservation and habitat requirements in a timber production forest in north-east New South Wales. In ‘Conservation of Australia’s Forest Fauna’. 2nd edn. (Ed. D. Lunney.) pp. 591–611. (Royal Zoological Society of New South Wales: Sydney.)

Sokal, R. R., and Rohlf, F. J. (1995). ‘Biometry – The Principles and Practice of Statistics in Biological Research.’ 3rd edn. (W. H. Freeman & Co.: New York)

Sullivan, B. J., Baxter, G. S., and Lisle, A. T. (2002). Low-density koala (Phascolarctos cinereus) populations in the mulgalands of south-west Queensland. I. Faecal pellet sampling protocol. Wildlife Research 29, 455–462.
Low-density koala (Phascolarctos cinereus) populations in the mulgalands of south-west Queensland. I. Faecal pellet sampling protocol.Crossref | GoogleScholarGoogle Scholar |

Sullivan, B. J., Norris, W. M., and Baxter, G. S. (2003). Low density koala (Phascolarctos cinereus) populations in the mulgalands of south-west Queensland. II. Distribution and diet. Wildlife Research 30, 331–338.
Low density koala (Phascolarctos cinereus) populations in the mulgalands of south-west Queensland. II. Distribution and diet.Crossref | GoogleScholarGoogle Scholar |

Thompson, C. H. (1988). ‘Soil Distribution: Perception and Portrayal.’ (Australian Soil Science Society, Queensland Branch.)

Thompson, C. H. (1992). Genesis of podzols on coastal dunes in southern Queensland. I. Field relationships and profile morphology. Australian Journal of Soil Research 30, 593–613.
Genesis of podzols on coastal dunes in southern Queensland. I. Field relationships and profile morphology.Crossref | GoogleScholarGoogle Scholar |

Tucker, G., Melzer, A., and Ellis, W. (2007). The development of habitat selection by subadult koalas. Australian Journal of Zoology 55, 285–289.
The development of habitat selection by subadult koalas.Crossref | GoogleScholarGoogle Scholar |

van Horne, B. (1983). Density as a misleading indicator of habitat quality. The Journal of Wildlife Management 47, 893–901.
Density as a misleading indicator of habitat quality.Crossref | GoogleScholarGoogle Scholar |

Woodward, W., Ellis, W. A., Carrick, F. N., Tanizaki, M., Bowen, D., and Smith, P. (2008). Koalas on North Stradbroke Island: diet, tree use and reconstructed landscapes. Wildlife Research 35, 606–611.
Koalas on North Stradbroke Island: diet, tree use and reconstructed landscapes.Crossref | GoogleScholarGoogle Scholar |