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Pacific Conservation Biology Pacific Conservation Biology Society
A journal dedicated to conservation and wildlife management in the Pacific region.
RESEARCH ARTICLE (Open Access)

Taxonomic revision reveals potential impacts of Black Summer megafires on a cryptic species

Chris J. Jolly https://orcid.org/0000-0002-5234-0897 A B * , Harry A. Moore A C , Mitchell A. Cowan https://orcid.org/0000-0001-8432-5301 A , Teigan Cremona D , Judy A. Dunlop https://orcid.org/0000-0003-4842-0672 A C E , Sarah M. Legge https://orcid.org/0000-0001-6968-2781 D F G , Grant D. Linley A , Vivianna Miritis H , John C. Z. Woinarski D and Dale G. Nimmo A
+ Author Affiliations
- Author Affiliations

A Institute of Land, Water and Society, School of Environmental Science, Charles Sturt University, Albury, NSW 2640, Australia.

B Australian Museum Research Institute, Australian Museum, Sydney, NSW 2010, Australia.

C School of Biological Sciences, University of Western Australia, Crawley, WA 6907, Australia.

D Research Institute for the Environment and Livelihoods, Charles Darwin University, Darwin, NT 0810, Australia.

E Western Australian Feral Cat Working Group, 58 Sutton Street, Mandurah, WA 6210, Australia.

F Centre for Conservation and Biodiversity Conservation Science, University of Queensland, St Lucia, Qld 4072, Australia.

G Fenner School of Society and the Environment, The Australian National University, Acton, ACT 2602, Australia.

H School of Life and Environmental Sciences, The University of Sydney, Camperdown, NSW 2006, Australia.

* Correspondence to: cjolly@csu.edu.au

Handling Editor: Mike Calver

Pacific Conservation Biology 29(1) 17-25 https://doi.org/10.1071/PC21045
Submitted: 13 July 2021  Accepted: 5 December 2021   Published: 6 January 2022

© 2023 The Author(s) (or their employer(s)). Published by CSIRO Publishing. This is an open access article distributed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (CC BY-NC-ND)

Abstract

Context: Sound taxonomy is the cornerstone of biodiversity conservation. Without a fundamental understanding of species delimitations, as well as their distributions and ecological requirements, our ability to conserve them is drastically impeded. Cryptic species – two or more distinct species currently classified as a single species – present a significant challenge to biodiversity conservation. How do we assess the conservation status and address potential drivers of extinction if we are unaware of a species’ existence? Here, we present a case where the reclassification of a species formerly considered widespread and secure – the sugar glider (Petaurus breviceps) – has dramatically increased our understanding of the potential impacts of the catastrophic 2019–20 Australian megafires to this species.

Methods: We modelled and mapped the distribution of the former and reclassified sugar glider (Petaurus breviceps). We then compared the proportional overlap of fire severity classes between the former and reclassified distribution, and intersected habitat suitability and fire severity to help identify areas of important habitat following the 2019–20 fires.

Key results: Taxonomic revision means that the distribution of this iconic species appears to have been reduced to 8% of its formerly accepted range. Whereas the 2019–20 Australian megafires overlapped with 8% of the formerly accepted range, they overlapped with 33% of the proposed range of the redefined Petaurus breviceps.

Conclusions: Our study serves as a sombre example of the substantial risk of underestimating impacts of mega-disturbance on cryptic species, and hence the urgent need for cataloguing Earth’s biodiversity in the age of megafire.

Keywords: dark extinction, mammal, marsupial, mega-fire, Petauridae, Petaurus breviceps, species distribution model, threat assessment.


References

Adkins, MF (2006). A burning issue: using fire to accelerate tree hollow formation in Eucalyptus species. Australian Forestry 69, 107–113.
A burning issue: using fire to accelerate tree hollow formation in Eucalyptus species.Crossref | GoogleScholarGoogle Scholar |

Barlow, J, Berenguer, E, Carmenta, R, and França, F (2020). Clarifying Amazonia’s burning crisis. Global Change Biology 26, 319–321.
Clarifying Amazonia’s burning crisis.Crossref | GoogleScholarGoogle Scholar | 31729092PubMed |

Barnett, JM, and Buzzetti, DRC (2014). A new species of Cichlocolaptes Reichenbach 1853 (Furnariidae), the ‘gritador-do-nordeste’, an undescribed trace of the fading bird life of northeastern Brazil. Revista Brasileira de Ornitologia 22, 75–94.
A new species of Cichlocolaptes Reichenbach 1853 (Furnariidae), the ‘gritador-do-nordeste’, an undescribed trace of the fading bird life of northeastern Brazil.Crossref | GoogleScholarGoogle Scholar |

Beheregaray, LB, Pfeiffer, LV, Attard, CRM, Sandoval-Castillo, J, Domingos, FMCB, Faulks, LK, Gilligan, DM, and Unmack, PJ (2017). Genome-wide data delimits multiple climate-determined species ranges in a widespread Australian fish, the golden perch (Macquaria ambigua). Molecular Phylogenetics and Evolution 111, 65–75.
Genome-wide data delimits multiple climate-determined species ranges in a widespread Australian fish, the golden perch (Macquaria ambigua).Crossref | GoogleScholarGoogle Scholar | 28347889PubMed |

Bickford, D, Lohman, DJ, Sodhi, NS, Ng, PKL, Meier, R, Winker, K, Ingram, KK, and Das, I (2007). Cryptic species as a window on diversity and conservation. Trends in Ecology & Evolution 22, 148–155.
Cryptic species as a window on diversity and conservation.Crossref | GoogleScholarGoogle Scholar |

Boehm, MMA, and Cronk, QCB (2021). Dark extinction: the problem of unknown historical extinctions. Biology Letters 17, 20210007.
Dark extinction: the problem of unknown historical extinctions.Crossref | GoogleScholarGoogle Scholar | 33653097PubMed |

Campbell, CD, Sarre, SD, Stojanovic, D, Gruber, B, Medlock, K, Harris, S, MacDonald, AJ, and Holleley, CE (2018). When is a native species invasive? Incursion of a novel predatory marsupial detected using molecular and historical data. Diversity and Distributions 24, 831–840.
When is a native species invasive? Incursion of a novel predatory marsupial detected using molecular and historical data.Crossref | GoogleScholarGoogle Scholar |

Catullo, RA, Schembri, R, Tedeschi, LG, Eldridge, MDB, Joseph, L, and Moritz, CC (2021). Benchmarking taxonomic and genetic diversity after the fact: lessons learned from the catastrophic 2019–2020 Australian bushfires. Frontiers in Ecology and Evolution 9, 645820.
Benchmarking taxonomic and genetic diversity after the fact: lessons learned from the catastrophic 2019–2020 Australian bushfires.Crossref | GoogleScholarGoogle Scholar |

Coates, DJ, Byrne, M, and Moritz, C (2018). Genetic diversity and conservation units: dealing with the species-population continuum in the age of genomics. Frontiers in Ecology and Evolution 6, 165.
Genetic diversity and conservation units: dealing with the species-population continuum in the age of genomics.Crossref | GoogleScholarGoogle Scholar |

Cremona, T, Baker, AM, Cooper, SJB, Montague-Drake, R, Stobo-Wilson, AM, and Carthew, SM (2021). Integrative taxonomic investigation of Petaurus breviceps (Marsupialia: Petauridae) reveals three distinct species. Zoological Journal of the Linnean Society 191, 503–527.
Integrative taxonomic investigation of Petaurus breviceps (Marsupialia: Petauridae) reveals three distinct species.Crossref | GoogleScholarGoogle Scholar |

Department of Industry Planning & Environment (DIPE) (2020) The Google Earth Engine BurntArea Map (GEEBAM) v2p1.’ (State Government of NSW and Department of Planning, Industry & Environment). Available at https://datasets.seed.nsw.gov.au/dataset/google-earth-engine-burnt-area-map-geebam

Eldridge, MDB, Meek, PD, and Johnson, RN (2014). Taxonomic uncertainty and the loss of biodiversity on Christmas Island, Indian Ocean: taxonomic uncertainty and extinction. Conservation Biology 28, 572–579.
Taxonomic uncertainty and the loss of biodiversity on Christmas Island, Indian Ocean: taxonomic uncertainty and extinction.Crossref | GoogleScholarGoogle Scholar |

Escobar, H (2019). Amazon fires clearly linked to deforestation, scientists say. Science 365, 853–853.
Amazon fires clearly linked to deforestation, scientists say.Crossref | GoogleScholarGoogle Scholar | 31467204PubMed |

Eyre, TJ (2005). Hollow-bearing trees in large glider habitat in south-east Queensland, Australia: abundance, spatial distribution and management. Pacific Conservation Biology 11, 23–37.
Hollow-bearing trees in large glider habitat in south-east Queensland, Australia: abundance, spatial distribution and management.Crossref | GoogleScholarGoogle Scholar |

Eyre, TJ, Butler, DW, Kelly, AL, and Wang, J (2010). Effects of forest management on structural features important for biodiversity in mixed-age hardwood forests in Australia’s subtropics. Forest Ecology and Management 259, 534–546.
Effects of forest management on structural features important for biodiversity in mixed-age hardwood forests in Australia’s subtropics.Crossref | GoogleScholarGoogle Scholar |

Garnett, ST, and Christidis, L (2017). Taxonomy anarchy hampers conservation. Nature 546, 25–27.
Taxonomy anarchy hampers conservation.Crossref | GoogleScholarGoogle Scholar | 28569833PubMed |

Gibbons P, Lindenmayer DB (2002) ‘Tree Hollows and Wildlife Conservation in Australia.’ (CSIRO Publishing: Melbourne, Vic.)

Goldingay, RL (2021). General or local habitat preferences? Unravelling geographically consistent patterns of habitat preference in gliding mammals. Forest Ecology and Management 491, 119204.
General or local habitat preferences? Unravelling geographically consistent patterns of habitat preference in gliding mammals.Crossref | GoogleScholarGoogle Scholar |

Goldingay, RL, Rueegger, NN, Grimson, MJ, and Taylor, BD (2015). Specific nest box designs can improve habitat restoration for cavity-dependent arboreal mammals: nest box designs favored by arboreal mammals. Restoration Ecology 23, 482–490.
Specific nest box designs can improve habitat restoration for cavity-dependent arboreal mammals: nest box designs favored by arboreal mammals.Crossref | GoogleScholarGoogle Scholar |

Haslem, A, Avitabile, SC, Taylor, RS, Kelly, LT, Watson, SJ, Nimmo, DG, Kenny, SA, Callister, KE, Spence-Bailey, LM, Bennett, AF, and Clarke, MF (2012). Time-since-fire and inter-fire interval influence hollow availability for fauna in a fire-prone system. Biological Conservation 152, 212–221.
Time-since-fire and inter-fire interval influence hollow availability for fauna in a fire-prone system.Crossref | GoogleScholarGoogle Scholar |

IUCN (2021) ‘The IUCN Red List of Threatened Species, version 2021-2.’ (International Union for Conservation of Nature)

Kavanagh, RP, Debus, S, Tweedie, T, and Webster, R (1995). Distribution of nocturnal forest birds and mammals in north-eastern New South Wales: relationships with environmental variables and management history. Wildlife Research 22, 359–377.
Distribution of nocturnal forest birds and mammals in north-eastern New South Wales: relationships with environmental variables and management history.Crossref | GoogleScholarGoogle Scholar |

Lamoreux, JF, Morrison, JC, Ricketts, TH, Olson, DM, Dinerstein, E, McKnight, MW, and Shugart, HH (2006). Global tests of biodiversity concordance and the importance of endemism. Nature 440, 212–214.
Global tests of biodiversity concordance and the importance of endemism.Crossref | GoogleScholarGoogle Scholar | 16382239PubMed |

Lees, AC, and Pimm, SL (2015). Species, extinct before we know them? Current Biology 25, R177–R180.
Species, extinct before we know them?Crossref | GoogleScholarGoogle Scholar | 25734261PubMed |

Legge SM, Woinarski JCZ, Garnett ST, Nimmo DG, Scheele BC, Lintermans M, Mitchell N, Ferris J (2020) Rapid analysis of impacts of the 2019-20 fires on animal species, and prioritisation of species for management response. (Department of Agriculture, Water and the Environment)

Legge, S, Woinarski, JCZ, Scheele, BC, Garnett, ST, Lintermans, M, Nimmo, DG, Whiterod, NS, Southwell, DM, Ehmke, G, Buchan, A, Gray, J, Metcalfe, DJ, Page, M, Rumpff, L, Leeuwen, S, Williams, D, Ahyong, ST, Chapple, DG, Cowan, M, Hossain, MA, Kennard, M, Macdonald, S, Moore, H, Marsh, J, McCormack, RB, Michael, D, Mitchell, N, Newell, D, Raadik, TA, and Tingley, R (2021). Rapid assessment of the biodiversity impacts of the 2019–2020 Australian megafires to guide urgent management intervention and recovery and lessons for other regions. Diversity and Distributions , .
Rapid assessment of the biodiversity impacts of the 2019–2020 Australian megafires to guide urgent management intervention and recovery and lessons for other regions.Crossref | GoogleScholarGoogle Scholar |

Lindenmayer, DB, Blanchard, W, Blair, D, McBurney, L, Taylor, C, Scheele, BC, Westgate, MJ, Robinson, N, and Foster, C (2021). The response of arboreal marsupials to long-term changes in forest disturbance. Animal Conservation 24, 246–258.
The response of arboreal marsupials to long-term changes in forest disturbance.Crossref | GoogleScholarGoogle Scholar |

Lindenmayer, DB, Blanchard, W, McBurney, L, Blair, D, Banks, S, Likens, GE, Franklin, JF, Laurance, WF, Stein, JAR, and Gibbons, P (2012). Interacting factors driving a major loss of large trees with cavities in a forest ecosystem. PLoS ONE 7, e41864.
Interacting factors driving a major loss of large trees with cavities in a forest ecosystem.Crossref | GoogleScholarGoogle Scholar | 23071486PubMed |

Lindenmayer, DB, Blanchard, W, McBurney, L, Blair, D, Banks, SC, Driscoll, D, Smith, AL, and Gill, AM (2013). Fire severity and landscape context effects on arboreal marsupials. Biological Conservation 167, 137–148.
Fire severity and landscape context effects on arboreal marsupials.Crossref | GoogleScholarGoogle Scholar |

Mace, GM (2004). The role of taxonomy in species conservation. Philosophical Transactions of the Royal Society of London. Series B: Biological Sciences 359, 711–719.
The role of taxonomy in species conservation.Crossref | GoogleScholarGoogle Scholar | 15253356PubMed |

McLean, CM, Bradstock, R, Price, O, and Kavanagh, RP (2015). Tree hollows and forest stand structure in Australian warm temperate Eucalyptus forests are adversely affected by logging more than wildfire. Forest Ecology and Management 341, 37–44.
Tree hollows and forest stand structure in Australian warm temperate Eucalyptus forests are adversely affected by logging more than wildfire.Crossref | GoogleScholarGoogle Scholar |

Nolan, RH, Boer, MM, Collins, L, Resco de Dios, V, Clarke, H, Jenkins, M, Kenny, B, and Bradstock, RA (2020). Causes and consequences of eastern Australia’s 2019–20 season of mega-fires. Global Change Biology 26, 1039–1041.
Causes and consequences of eastern Australia’s 2019–20 season of mega-fires.Crossref | GoogleScholarGoogle Scholar | 31916352PubMed |

Phillips, SJ (2005). A brief tutorial on Maxent. AT&T Research 190, 231–259.

Phillips, SJ, Anderson, RP, and Schapire, RE (2006). Maximum entropy modeling of species geographic distributions. Ecological Modelling 190, 231–259.
Maximum entropy modeling of species geographic distributions.Crossref | GoogleScholarGoogle Scholar |

Phillips, SJ, Dudík, M, Elith, J, Graham, CH, Lehmann, A, Leathwick, J, and Ferrier, S (2009). Sample selection bias and presence-only distribution models: implications for background and pseudo-absence data. Ecological Applications 19, 181–197.
Sample selection bias and presence-only distribution models: implications for background and pseudo-absence data.Crossref | GoogleScholarGoogle Scholar | 19323182PubMed |

QGIS Development Team (2021) QGIS geographic information system. (Open Source Geospatial Foundation) Available at http://qgis.org

R Core Team (2021) ‘R: a language and environment for statistical computing.’ (R Foundation for Statistical Computing: Vienna)

Régnier, C, Achaz, G, Lambert, A, Cowie, RH, Bouchet, P, and Fontaine, B (2015). Mass extinction in poorly known taxa. Proceedings of the National Academy of Sciences of the United States of America 112, 7761–7766.
Mass extinction in poorly known taxa.Crossref | GoogleScholarGoogle Scholar | 26056308PubMed |

Rosauer, DF, Blom, MPK, Bourke, G, Catalano, S, Donnellan, S, Gillespie, G, Mulder, E, Oliver, PM, Potter, S, Pratt, RC, Rabosky, DL, Skipwith, PL, and Moritz, C (2016). Phylogeography, hotspots and conservation priorities: an example from the Top End of Australia. Biological Conservation 204, 83–93.
Phylogeography, hotspots and conservation priorities: an example from the Top End of Australia.Crossref | GoogleScholarGoogle Scholar |

Salmona, J, Dixon, KM, and Banks, SC (2018). The effects of fire history on hollow-bearing tree abundance in montane and subalpine eucalypt forests in southeastern Australia. Forest Ecology and Management 428, 93–103.
The effects of fire history on hollow-bearing tree abundance in montane and subalpine eucalypt forests in southeastern Australia.Crossref | GoogleScholarGoogle Scholar |

Saunders, ME, Barton, PS, Bickerstaff, JRM, Frost, L, Latty, T, Lessard, BD, Lowe, EC, Rodriguez, J, White, TE, and Umbers, KDL (2021). Limited understanding of bushfire impacts on Australian invertebrates. Insect Conservation and Diversity 14, 285–293.
Limited understanding of bushfire impacts on Australian invertebrates.Crossref | GoogleScholarGoogle Scholar |

Smith, AP (1982). Diet and feeding strategies of the marsupial sugar glider in temperate Australia. The Journal of Animal Ecology 51, 149.
Diet and feeding strategies of the marsupial sugar glider in temperate Australia.Crossref | GoogleScholarGoogle Scholar |

Swengel, AB (2001). A literature review of insect responses to fire, compared to other conservation managements of open habitat. Biodiversity and Conservation 10, 1141–1169.
A literature review of insect responses to fire, compared to other conservation managements of open habitat.Crossref | GoogleScholarGoogle Scholar |

Venables WN, Ripley BD (2002) ‘MASS library of functions. Modern applied statistics with S.’ (Springer)

Ward, M, Tulloch, AIT, Radford, JQ, Williams, BA, Reside, AE, Macdonald, SL, Mayfield, HJ, Maron, M, Possingham, HP, Vine, SJ, O’Connor, JL, Massingham, EJ, Greenville, AC, Woinarski, JCZ, Garnett, ST, Lintermans, M, Scheele, BC, Carwardine, J, Nimmo, DG, Lindenmayer, DB, Kooyman, RM, Simmonds, JS, Sonter, LJ, and Watson, JEM (2020). Impact of 2019–2020 mega-fires on Australian fauna habitat. Nature Ecology & Evolution 4, 1321–1326.
Impact of 2019–2020 mega-fires on Australian fauna habitat.Crossref | GoogleScholarGoogle Scholar |

Wheeler, QD (2004). Taxonomic triage and the poverty of phylogeny. Philosophical Transactions of the Royal Society of London. Series B: Biological Sciences 359, 571–583.
Taxonomic triage and the poverty of phylogeny.Crossref | GoogleScholarGoogle Scholar | 15253345PubMed |

Wintle, BA, Kavanagh, RP, McCarthy, MA, and Burgman, MA (2005). Estimating and dealing with detectability in occupancy surveys for forest owls and arboreal marsupials. Journal of Wildlife Management 69, 905–917.
Estimating and dealing with detectability in occupancy surveys for forest owls and arboreal marsupials.Crossref | GoogleScholarGoogle Scholar |

Wintle, BA, Legge, S, and Woinarski, JCZ (2020). After the megafires: what next for Australian wildlife? Trends in Ecology & Evolution 35, 753–757.
After the megafires: what next for Australian wildlife?Crossref | GoogleScholarGoogle Scholar |