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Australian Mammalogy Australian Mammalogy Society
Journal of the Australian Mammal Society
RESEARCH ARTICLE

Gut passage time and viability of seeds consumed by Australian marsupials

Gabrielle Beca https://orcid.org/0000-0002-7791-3188 A C , Bryony Palmer A , Leonie E. Valentine A , Todd E. Erickson A B and Richard J. Hobbs A
+ Author Affiliations
- Author Affiliations

A School of Biological Sciences, University of Western Australia, Crawley, WA 6009, Australia.

B Kings Park Science, Department of Biodiversity, Conservation and Attractions, Kings Park, WA 6005, Australia.

C Corresponding author. Email: gabrielle.beca@research.uwa.edu.au

Australian Mammalogy 43(3) 363-367 https://doi.org/10.1071/AM20063
Submitted: 27 July 2020  Accepted: 29 October 2020   Published: 19 November 2020

Abstract

Many Australian mammals consume seeds, but their role in seed dispersal has not been well explored. Here, we investigated the mean retention time and the postconsumption germination capacity of Australian seeds (Acacia acuminata, Dodonaea viscosa and Gastrolobium calycinum) likely to be consumed by quenda (Isoodon fusciventer) and woylies (Bettongia penicillata ogilbyi). Mean excretion times were 14 h for quenda and 24 h for woylies, but some seeds were retained in their digestive passages for up to 39.5 and 55.5 h, respectively. Viable seeds of all plant species were retrieved from both species’ scats and only G. calycinum seeds ingested by quenda had a significantly higher germination percentage (62%) than control seeds (34%). Our results show that viable seeds are deposited in the scats of quenda and woylies, indicating that these species may play a role in seed dispersal.

Keywords: endozoochory, granivory, peramelid, potoroid, quenda, seed dispersal, seed germination, woylie.


References

Auld, T. D., and Denham, A. (1999). The role of ants and mammals in dispersal and post-dispersal seed predation of the shrubs Grevillea (Proteaceae). Plant Ecology 144, 201–213.
The role of ants and mammals in dispersal and post-dispersal seed predation of the shrubs Grevillea (Proteaceae).Crossref | GoogleScholarGoogle Scholar |

Ballardie, R. T., and Whelan, R. J. (1986). Masting, seed dispersal and seed predation in the cycad Macrozamia communis. Oecologia 70, 100–105.
Masting, seed dispersal and seed predation in the cycad Macrozamia communis.Crossref | GoogleScholarGoogle Scholar | 28311292PubMed |

Bice, J., and Moseby, K. (2008). Diets of the re-introduced greater bilby (Macrotis lagotis) and burrowing bettong (Bettongia lesueur) in the Arid Recovery Reserve, northern South Australia. Australian Mammalogy 30, 1–12.
Diets of the re-introduced greater bilby (Macrotis lagotis) and burrowing bettong (Bettongia lesueur) in the Arid Recovery Reserve, northern South Australia.Crossref | GoogleScholarGoogle Scholar |

Cantor, M., Ferreira, L. A., Silva, W. R., and Setz, E. Z. F. (2010). Potential seed dispersal by Didelphis albiventris (Marsupialia, Didelphidae) in highly disturbed environment. Biota Neotropica 10, 45–51.
Potential seed dispersal by Didelphis albiventris (Marsupialia, Didelphidae) in highly disturbed environment.Crossref | GoogleScholarGoogle Scholar |

Carlo, T. A., Aukema, J. E., and Morales, J. M. (2007). Plant–frugivore interactions as spatially explicit networks: integrating frugivore foraging with fruiting plant spatial patterns. In ‘Seed Dispersal: Theory and its Application in a Changing World’. (Eds A. J. Dennis, E. W. Schupp, R. J. Green, and D. A. Westcott.) pp. 369–390. (CABI: Reading, UK.)

Chapman, T. F. (2015). Reintroduced burrowing bettongs (Bettongia lesueur) scatter hoard sandalwood (Santalum spicatum) seed. Australian Journal of Zoology 63, 76–79.
Reintroduced burrowing bettongs (Bettongia lesueur) scatter hoard sandalwood (Santalum spicatum) seed.Crossref | GoogleScholarGoogle Scholar |

Christensen, P. (1980) The biology of Bettongia penicillata Gray, 1837, and Macropus eugenii (Desmarest, 1817) in relation to fire. Bulletin. (Forests Department of Western Australia: Perth, WA)

Cochrane, J., Friend, J., and Hill, S. (2005). Endozoochory and the Australian bluebell: consumption of Billardiera fusiformis (Labill.) Payer (Pittosporaceae) seeds by three mammal species at Two Peoples Bay Nature Reserve, Western Australia. Journal of the Royal Society of Western Australia 88, 191.

Dovrat, G., Perevolotsky, A., and Ne’eman, G. (2012). Wild boars as seed dispersal agents of exotic plants from agricultural lands to conservation areas. Journal of Arid Environments 78, 49–54.
Wild boars as seed dispersal agents of exotic plants from agricultural lands to conservation areas.Crossref | GoogleScholarGoogle Scholar |

Erickson, T. E., and Merritt, D. J. (2016). Seed collection, cleaning, and storage procedures. In ‘Pilbara Seed Atlas and Field Guide: Plant Restoration in Australia’s Arid Northwest’. (Eds T. E. Erickson, R. L. Barrett, D. J. Merritt, and K. W. Dixon.) pp. 7–16. (CSIRO Publishing: Melbourne.)

Garkaklis, M. J., Bradley, J. S., and Wooller, R. D. (2004). Digging and soil turnover by a mycophagous marsupial. Journal of Arid Environments 56, 569–578.
Digging and soil turnover by a mycophagous marsupial.Crossref | GoogleScholarGoogle Scholar |

Genes, L., Fernandez, F. A. S., Vaz-de-Mello, F. Z., da Rosa, P., Fernandez, E., and Pires, A. S. (2019). Effects of howler monkey reintroduction on ecological interactions and processes. Conservation Biology 33, 88–98.
Effects of howler monkey reintroduction on ecological interactions and processes.Crossref | GoogleScholarGoogle Scholar | 29998590PubMed |

Gibson, L. A. (2001). Seasonal changes in the diet, food availability and food preference of the greater bilby (Macrotis lagotis) in south-western Queensland. Wildlife Research 28, 121–134.
Seasonal changes in the diet, food availability and food preference of the greater bilby (Macrotis lagotis) in south-western Queensland.Crossref | GoogleScholarGoogle Scholar |

Gibson, L. A., and Hume, I. D. (2000). Digestive performance and digesta passage in the omnivorous greater bilby, Macrotis lagotis (Marsupialia: Peramelidae). Journal of Comparative Physiology B – Biochemical Systemic and Environmental Physiology 170, 457–467.
Digestive performance and digesta passage in the omnivorous greater bilby, Macrotis lagotis (Marsupialia: Peramelidae).Crossref | GoogleScholarGoogle Scholar |

Janzen, D. H. (1970). Herbivores and the number of tree species in tropical forests. The American Naturalist 104, 501–528.
Herbivores and the number of tree species in tropical forests.Crossref | GoogleScholarGoogle Scholar |

McClelland, K. L., Hume, I. D., and Soran, N. (1999). Responses of the digestive tract of the omnivorous northern brown bandicoot, Isoodon macrourus (Marsupialia: Peramelidae), to plant and insect containing diets. Journal of Comparative Physiology B 169, 411–418.
Responses of the digestive tract of the omnivorous northern brown bandicoot, Isoodon macrourus (Marsupialia: Peramelidae), to plant and insect containing diets.Crossref | GoogleScholarGoogle Scholar |

Merritt, D. (2006). Seed storage and testing. In ‘Australian Seeds: A Guide to their Collection, Identification and Biology’. (Eds L. Sweedman, and D. Merritt.) pp. 53–60. (CSIRO Publishing: Melbourne.)

Merritt, D., Turner, S., Clarke, S., and Dixon, K. (2007). Seed dormancy and germination stimulation syndromes for Australian temperate species. Australian Journal of Botany 55, 336–344.
Seed dormancy and germination stimulation syndromes for Australian temperate species.Crossref | GoogleScholarGoogle Scholar |

Mills, C. H., Gordon, C. E., and Letnic, M. (2018). Rewilded mammal assemblages reveal the missing ecological functions of granivores. Functional Ecology 32, 475–485.
Rewilded mammal assemblages reveal the missing ecological functions of granivores.Crossref | GoogleScholarGoogle Scholar |

Morton, S. (1985). Granivory in arid regions: comparison of Australia with North and South America. Ecology 66, 1859–1866.
Granivory in arid regions: comparison of Australia with North and South America.Crossref | GoogleScholarGoogle Scholar |

Moyle, D. I., Hume, I. D., and Hill, D. M. (1995). Digestive performance and selective digesta retention in the long-nosed bandicoot, Perameles nasuta, a small omnivorous marsupial. Journal of Comparative Physiology B 164, 552–560.
Digestive performance and selective digesta retention in the long-nosed bandicoot, Perameles nasuta, a small omnivorous marsupial.Crossref | GoogleScholarGoogle Scholar |

Murphy, M. (2009) The relationship between Bettongia penicillata ogilbyi (the woylie) and Santalum spicatum (sandalwood): implications for functional processes in Dryandra, a semi-arid woodland in Western Australia. Ph.D. Thesis, Murdoch University, Perth

Murray, B. R., Dickman, C. R., Watts, C. H. S., and Morton, S. R. (1999). The dietary ecology of Australian rodents. Wildlife Research 26, 857–858.
The dietary ecology of Australian rodents.Crossref | GoogleScholarGoogle Scholar |

Petre, C.-A., Tagg, N., Beudels-Jamar, R. C., Haurez, B., and Doucet, J.-L. (2015). Western lowland gorilla seed dispersal: are seeds adapted to long gut retention times? Acta Oecologica 67, 59–65.
Western lowland gorilla seed dispersal: are seeds adapted to long gut retention times?Crossref | GoogleScholarGoogle Scholar |

Quin, D. G. (1985). Observations on the diet of the southern brown bandicoot, Isoodon obesulus (Marsupialia: Peramelidae), in southern Tasmania. Australian Mammalogy 11, 15–25.

R Core Team (2019). R: a language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria.

Radnan, G. N., and Eldridge, D. J. (2017). Does the morphology of animal foraging pits influence secondary seed dispersal by ants? Austral Ecology 42, 920–928.
Does the morphology of animal foraging pits influence secondary seed dispersal by ants?Crossref | GoogleScholarGoogle Scholar |

Sweedman, L., and Merritt, D. (2006). ‘Australian Seeds: A Guide to their Collection, Identification and Biology.’ (CSIRO Publishing: Melbourne.)

Tay, N. E., Hopkins, A. J., Ruthrof, K. X., Burgess, T., Hardy, G. E. S., and Fleming, P. A. (2018) The tripartite relationship between a bioturbator, mycorrhizal fungi, and a key Mediterranean forest tree. Austral Ecology 43(7), 742–75110.1111/aec.12598

Traveset, A. (1998). Effect of seed passage through vertebrate frugivores’ guts on germination: a review. Perspectives in Plant Ecology, Evolution and Systematics 1, 151–190.
Effect of seed passage through vertebrate frugivores’ guts on germination: a review.Crossref | GoogleScholarGoogle Scholar |

Traveset, A., Nogales, M., Vargas, P., Rumeu, B., Olesen, J. M., Jaramillo, P., and Heleno, R. (2016). Galapagos land iguana (Conolophus subcristatus) as a seed disperser. Integr Zool 11, 207–13.
Galapagos land iguana (Conolophus subcristatus) as a seed disperser.Crossref | GoogleScholarGoogle Scholar | 26748830PubMed |

Traveset, A., Robertson, A. W., and Rodriguez-Perez, J. (2007). A review on the role of endozoochory in seed germination. In ‘Seed Dispersal: Theory and its Application in a Changing World’. (Eds A. J. Dennis, E. W. Schupp, R. J. Green, and D. A. Westcott.) pp. 78–103. (CABI: Reading, UK.)

Valentine, L. E., Anderson, A., Hardy, G. E. S. J., and Fleming, P. A. (2012). Foraging activity by the southern brown bandicoot (Isoodon obesulus) as a mechanism for soil turnover. Australian Journal of Zoology 60, 419–423.
Foraging activity by the southern brown bandicoot (Isoodon obesulus) as a mechanism for soil turnover.Crossref | GoogleScholarGoogle Scholar |

Valentine, L. E., Bretz, M., Ruthrof, K. X., Fisher, R., Hardy, G. E. S. J., and Fleming, P. A. (2017). Scratching beneath the surface: bandicoot bioturbation contributes to ecosystem processes. Austral Ecology 42, 265–276.
Scratching beneath the surface: bandicoot bioturbation contributes to ecosystem processes.Crossref | GoogleScholarGoogle Scholar |

Valentine, L. E., Ruthrof, K. X., Fisher, R., Hardy, G. E. S. J., Hobbs, R. J., Fleming, P. A., and Stevens, C. (2018). Bioturbation by bandicoots facilitates seedling growth by altering soil properties. Functional Ecology 32, 2138–2148.
Bioturbation by bandicoots facilitates seedling growth by altering soil properties.Crossref | GoogleScholarGoogle Scholar |

Van Dyck, S., and Strahan, R. (2008) ‘The Mammals of Australia,’ 3rd edn. (Reed New Holland: Sydney)

Wallis, I. R. (1994). The rate of passage of digesta through the gastrointestinal tracts of potoroine marsupials: more evidence about the role of the potoroine foregut. Physiological Zoology 67, 771–795.
The rate of passage of digesta through the gastrointestinal tracts of potoroine marsupials: more evidence about the role of the potoroine foregut.Crossref | GoogleScholarGoogle Scholar |

Williams, P. A., Karl, B. J., Bannister, P., and Lee, W. G. (2000). Small mammals as potential seed dispersers in New Zealand. Austral Ecology 25, 523–532.
Small mammals as potential seed dispersers in New Zealand.Crossref | GoogleScholarGoogle Scholar |

Yeatman, G.J., and Wayne, A.F. (2015) Seasonal home range and habitat use of a critically endangered marsupial (Bettongia penicillata ogilbyi) inside and outside a predator-proof sanctuary. Australian Mammalogy 37(2), 157–16310.1071/AM14022