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Australian Journal of Botany Australian Journal of Botany Society
Southern hemisphere botanical ecosystems
RESEARCH FRONT

Seed ecology informs restoration approaches for threatened species in water-limited environments: a case study on the short-range Banded Ironstone endemic Ricinocarpos brevis (Euphorbiaceae)

Shane R. Turner A B D , Wolfgang Lewandrowski A B , Carole P. Elliott A B , Luis Merino-Martín A B C , Ben P. Miller A B , Jason C. Stevens A B , Todd E. Erickson A B and David J. Merritt A B
+ Author Affiliations
- Author Affiliations

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

B Science Directorate, Kings Park and Botanic Garden, Kings Park, WA 6005, Australia.

C AMAP, CIRAD, CNRS, INRA, IRD, Université de Montpellier, Montpellier 34090, France.

D Corresponding author. Email: shane.turner@dbca.wa.gov.au

Australian Journal of Botany 65(8) 661-677 https://doi.org/10.1071/BT17155
Submitted: 25 August 2017  Accepted: 9 November 2017   Published: 21 December 2017

Abstract

Translocation of threatened species is challenging in semiarid environments, especially when seeds are the principal means of in situ establishment. Worldwide, the overall success of translocations using seeds is highly variable and generally unpredictable. Most seed-based translocations are embarked upon with limited understanding of the species’ seed biology or the nuances of the local abiotic environment in which to guide restoration approaches. For instance, within Australia just 14% of threatened species translocations use directly sown seeds and consequently, to improve the chances of restoration success, both the seed biology and the influence of the abiotic environment need to be adequately understood. We investigated these aspects in Ricinocarpos brevis R.J.F.Hend. & Mollemans – a short-range Banded Ironstone endemic – by focusing on a series of laboratory and field experiments to understand the key drivers of dormancy alleviation and germination promotion, as well as in-situ conditions of natural and recipient translocation sites. Fresh seeds were found to have high viability, fully developed linear embryos and possess physiological dormancy, with enhanced germination when exposed to smoke water, karrikinolide (KAR1) and gibberellic acid (GA3). Under laboratory conditions, seeds germinated over a range of temperatures (15−30°C), but germination was suppressed by light and highly sensitive to water stress. Seeds had reduced germination when sown on the soil surface, but could emerge from up to 13 cm in depth. Under field conditions, in-situ emergence was <2%. Using in-situ emergence results, soil loggers and rainfall data, we developed a model of the recruitment bottlenecks faced by this species under in-situ conditions, an approach that provides useful insights to assist future translocations. Understanding seed biology and seed ecology enables better insights into the principal bottlenecks restricting in-situ emergence and consequently restoration success, leading to the development of more effective approaches for conserving other threatened flora in future.

Additional keywords: conservation, recruitment bottleneck, rehabilitation, smoke, seed dormancy, translocation, water potential.


References

Ainsley P, Jones M, Erickson T (2008) Overcoming physiological dormancy in Prostanthera eurybioides (Lamiaceae), a nationally endangered Australian shrub species. Australian Journal of Botany 56, 214–219.
Overcoming physiological dormancy in Prostanthera eurybioides (Lamiaceae), a nationally endangered Australian shrub species.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD1cXmtV2kt7c%3D&md5=d8ba263e655a94e8901d3bbc30a94e68CAS |

Ashmore SE, Hamilton KN, Offord CA (2011) Conservation technologies for safeguarding and restoring threatened flora: case studies from Eastern Australia. In Vitro Cellular & Developmental Biology. Plant 47, 99–109.
Conservation technologies for safeguarding and restoring threatened flora: case studies from Eastern Australia.Crossref | GoogleScholarGoogle Scholar |

Australian Government (2015) ‘Threatened species strategy.’ (Commonwealth of Australia: Canberra, ACT) Available at https://www.environment.gov.au/system/files/resources/51b0e2d4-50ae-49b5-8317-081c6afb3117/files/ts-strategy.pdf [Verified 17 November 2017].

Australian Seed Bank Partnership (2017) Available at http://www.seedpartnership.org.au/ [Verified 17 November 2017].

Baskin JM, Baskin CC (2004) A classification system for seed dormancy. Seed Science Research 14, 1–16.
A classification system for seed dormancy.Crossref | GoogleScholarGoogle Scholar |

Baskin CC, Baskin JM (2014) ‘Seeds: ecology, biogeography and evolution of dormancy and germination’. (2nd edn) (Academic Press: San Diego, CA, USA)

Bell DT, Plummer JA, Taylor SK (1993) Seed germination ecology in Southwestern Western Australia. Botanical Review 59, 24–73.
Seed germination ecology in Southwestern Western Australia.Crossref | GoogleScholarGoogle Scholar |

Bell DT, Rokich DP, McChesney CJ, Plummer JA (1995) Effects of temperature, light and gibberellic acid on the germination of seeds of 43 species native to Western Australia. Journal of Vegetation Science 6, 797–806.
Effects of temperature, light and gibberellic acid on the germination of seeds of 43 species native to Western Australia.Crossref | GoogleScholarGoogle Scholar |

Bowles ML, McBride JL, Bell TJ (2015) Long-term processes affecting restoration and viability of the federal threatened Mead’s milkweed (Asclepias meadii). Ecosphere 6, 11
Long-term processes affecting restoration and viability of the federal threatened Mead’s milkweed (Asclepias meadii).Crossref | GoogleScholarGoogle Scholar |

Bunn E, Turner SR, Dixon KW (2011) Biotechnology for saving rare and threatened flora in a biodiversity hotspot. In Vitro Cellular & Developmental Biology. Plant 47, 188–200.
Biotechnology for saving rare and threatened flora in a biodiversity hotspot.Crossref | GoogleScholarGoogle Scholar |

Bureau of Meteorology (2017) ‘Climate statistics for Australian locations.’ (Commonwealth of Australia) Available at http://www.bom.gov.au/ [Verified 17 November 2017].

Clarke S, French K (2005) Germination response to heat and smoke of 22 Poaceae species from grassy woodlands. Australian Journal of Botany 53, 445–454.
Germination response to heat and smoke of 22 Poaceae species from grassy woodlands.Crossref | GoogleScholarGoogle Scholar |

Cochrane A, Crawford A (2013) 21 years of seed conservation in the WA Department of Environment and Conservation: achievements and future directions. Australasian Plant Conservation 2, 21–23.

Cochrane A, Yates CJ, Hoyle GL, Nicotra AB (2015) Will among‐population variation in seed traits improve the chance of species persistence under climate change? Global Ecology and Biogeography 24, 12–24.
Will among‐population variation in seed traits improve the chance of species persistence under climate change?Crossref | GoogleScholarGoogle Scholar |

Commander LE, Merritt DJ, Rokich DP, Dixon KW (2009) The role of after-ripening in promoting germination of arid zone seeds: a study on six Australian species. Botanical Journal of the Linnean Society 161, 411–421.
The role of after-ripening in promoting germination of arid zone seeds: a study on six Australian species.Crossref | GoogleScholarGoogle Scholar |

Corbineau F, Côme D (1982) Effect of the intensity and duration of light at various temperatures on the germination of Oldenlandia corymbosa L. seeds. Plant Physiology 70, 1518–1520.
Effect of the intensity and duration of light at various temperatures on the germination of Oldenlandia corymbosa L. seeds.Crossref | GoogleScholarGoogle Scholar | 1:STN:280:DC%2BC3cnhsVyrsg%3D%3D&md5=38be6820b0a7e513ef11d6063c3de95dCAS |

Department of Environment and Conservation (2011) Ricinocarpos brevis interim recovery plan 2011–2016. No. 312. Department of Environment and Conservation, Perth, Western Australia.

Dixon KW, Roche S, Pate JS (1995) The promotive effects of smoke derived from burnt native vegetation on seed germination of Western Australian plants. Oecologia 101, 185–192.
The promotive effects of smoke derived from burnt native vegetation on seed germination of Western Australian plants.Crossref | GoogleScholarGoogle Scholar |

Drayton B, Primack RB (2000) Rates of success in the reintroduction by four methods of several perennial plant species in eastern Massachusetts. Rhodora 102, 299–331.

Erickson TE, Merritt DJ, Turner SR (2016a) Seed dormancy and germination of arid zone species. In ‘Pilbara seed atlas and field guide: plant restoration in Australia’s arid northwest’. (Eds TE Erickson, RL Barrett, DJ Merritt, KW Dixon) pp. 17–34. (CSIRO Publishing: Melbourne)

Erickson TE, Shackelford N, Dixon KW, Turner SR, Merritt DJ (2016b) Overcoming physiological dormancy in seeds of Triodia (Poaceae) to improve restoration in the arid zone. Restoration Ecology 24, S64–S76.
Overcoming physiological dormancy in seeds of Triodia (Poaceae) to improve restoration in the arid zone.Crossref | GoogleScholarGoogle Scholar |

Erickson TE, Munoz-Rojas M, Kildisheva O, Stokes BA, White SA, Heyes JL, Dalziell EL, Lewandrowski W, James JJ, Madsen MD, Turner SR, Merritt DJ (2017) Benefits of adopting seed-based technologies for rehabilitation in the mining sector: A Pilbara perspective. Australian Journal of Botany
Benefits of adopting seed-based technologies for rehabilitation in the mining sector: A Pilbara perspective.Crossref | GoogleScholarGoogle Scholar | in press.

Fenner M (1985) ‘Seed ecology.’ (Chapman & Hall: London, UK)

Ferrazzano S, Williamson PS (2013) Benefits of mycorrhizal inoculation in reintroduction of endangered plant species under drought conditions. Journal of Arid Environments 98, 123–125.
Benefits of mycorrhizal inoculation in reintroduction of endangered plant species under drought conditions.Crossref | GoogleScholarGoogle Scholar |

Flematti GR, Ghisalberti EL, Dixon KW, Trengove RD (2005) Synthesis of the seed germination stimulant 3-methyl-2H-furo[2,3-c]pyran-2-one. Tetrahedron Letters 46, 5719–5721.
Synthesis of the seed germination stimulant 3-methyl-2H-furo[2,3-c]pyran-2-one.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2MXmtlKjs7g%3D&md5=12402b6cfdb1aa3ca2b64cba706410a1CAS |

Flores J, Briones O (2001) Plant life-form and germination in a Mexican inter-tropical desert: effects of soil water potential and temperature. Journal of Arid Environments 47, 485–497.
Plant life-form and germination in a Mexican inter-tropical desert: effects of soil water potential and temperature.Crossref | GoogleScholarGoogle Scholar |

Ghebrehiwot HM, Kulkarni MG, Kirkman KP, Van Staden J (2008) Smoke-water and a smoke-isolated butenolide improve germination and seedling vigour of Eragrostis tef (Zucc.) Trotter under high temperature and low osmotic potential. Journal Agronomy & Crop Science 194, 270–277.
Smoke-water and a smoke-isolated butenolide improve germination and seedling vigour of Eragrostis tef (Zucc.) Trotter under high temperature and low osmotic potential.Crossref | GoogleScholarGoogle Scholar |

Gibson N, Coates DJ, Thiele KR (2007) Taxonomic research and the conservation status of flora in the Yilgarn banded iron formation ranges. Nuytsia 17, 1–12.

Gibson N, Yates CJ, Dillon R (2010) Plant communities of the ironstone ranges of South Western Australia: hotspots for plant diversity and mineral deposits. Biodiversity and Conservation 19, 3951–3962.
Plant communities of the ironstone ranges of South Western Australia: hotspots for plant diversity and mineral deposits.Crossref | GoogleScholarGoogle Scholar |

Godefroid S, Piazza C, Rossi G, Buord S, Stevens AD, Aguraiuja R, Cowell C, Weekley CW, Vogg G, Iriondo JM, Johnson I, Dixon B, Gordon D, Magnanon S, Valentin B, Bjureke K, Koopman R, Vicens M, Virevaire M, Vanderborght T (2011) How successful are plant species reintroductions? Biological Conservation 144, 672–682.
How successful are plant species reintroductions?Crossref | GoogleScholarGoogle Scholar |

Gorecki MJ, Long RL, Flematti GR, Stevens JC (2012) Parental environment changes the dormancy state and karrikinolide response of Brassica tournefortii seeds. Annals of Botany 109, 1369–1378.
Parental environment changes the dormancy state and karrikinolide response of Brassica tournefortii seeds.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC38XnvVOlsbg%3D&md5=b1939492e7636213879310346added71CAS |

Gutterman Y (1994) Strategies of seed dispersal and germination in plants inhabiting deserts. Botanical Review 60, 373–425.
Strategies of seed dispersal and germination in plants inhabiting deserts.Crossref | GoogleScholarGoogle Scholar |

Hamilton KH, Offord CA, Cuneo P, Deseo MA (2013) A comparative study of seed morphology in relation to desiccation tolerance and other physiological responses in 71 Eastern Australian rainforest species. Plant Species Biology 28, 51–62.
A comparative study of seed morphology in relation to desiccation tolerance and other physiological responses in 71 Eastern Australian rainforest species.Crossref | GoogleScholarGoogle Scholar |

Hancock N, Gallagher RV, Makinson RO (2014) Monitoring and prioritisation of flora translocations: a survey of opinions from practitioners and researchers. Report to the Biodiversity Hub of the NSW Office of Environment and Heritage) Available at https://www.mq.edu.au/__data/assets/pdf_file/0009/82557/Monitoring20and20prioritising20translocations.pdf [Verified 17 November 2017].

Hay FR, Adams J, Manger K, Probert R (2008) The use of non-saturated lithium chloride solutions for experimental control of seed water content. Seed Science and Technology 36, 737–746.
The use of non-saturated lithium chloride solutions for experimental control of seed water content.Crossref | GoogleScholarGoogle Scholar |

Jiménez‐Alfaro B, Silveira FA, Fidelis A, Poschlod P, Commander LE (2016) Seed germination traits can contribute better to plant community ecology. Journal of Vegetation Science 27, 637–645.
Seed germination traits can contribute better to plant community ecology.Crossref | GoogleScholarGoogle Scholar |

Jurado E, Westoby M (1992) Germination biology of selected central Australian plants. Australian Journal of Ecology 17, 341–348.
Germination biology of selected central Australian plants.Crossref | GoogleScholarGoogle Scholar |

Jurado E, Westoby M, Nelson D (1991) Diaspore weight, dispersal, growth form, and perenniality of central Australian plants. Journal of Ecology 79, 811–830.
Diaspore weight, dispersal, growth form, and perenniality of central Australian plants.Crossref | GoogleScholarGoogle Scholar |

Jusaitis M (2005) Translocation trials confirm specific factors affecting the establishment of three endangered plant species. Ecological Management & Restoration 6, 61–67.
Translocation trials confirm specific factors affecting the establishment of three endangered plant species.Crossref | GoogleScholarGoogle Scholar |

Jusaitis M (2011) Trial translocations of Leionema equestre on Kangaroo Island, South Australia. In ‘Global re-introduction perspectives: 2011. More case studies from around the globe’. (Ed. PS Soorae) pp. 210–211. (IUCN/SSC Re-introduction Specialist Group: Abu Dhabi, United Arab Emirates)

Jusaitis M (2013) Experimental translocation of the Peep Hill hopbush into conservation reserves in the semi-arid Mallee of South Australia. In ‘Global Re-introduction Perspectives: 2013. Further case studies from around the globe’. (Ed PS Soorae) pp. 267–271. (IUCN/SSC Re-introduction Specialist Group: Abu Dhabi, United Arab Emirates)

Jusaitis M (2016) Reinforcement of a population of chalky wattle on Eyre Peninsula, South Australia’ In ‘Global re-introduction perspectives: 2016. Case-studies from around the globe’. (Ed. PS Soorae) pp. 246–251. (IUCN/SSC Reintroduction Specialist Group: Abu Dhabi, United Arab Emirates)

Jusaitis M, Freebairn A (2011) Trial translocations into edaphically modified habitats enhanced the regeneration of prickly raspwort on Eyre Peninsula, South Australia, 9. In ‘Global re-introduction perspectives: 2016. Case-studies from around the globe’. (Ed. PS Soorae) pp. 205–209. (IUCN/SSC Reintroduction Specialist Group: Abu Dhabi, United Arab Emirates)

Jusaitis M, Polomka L (2008) Weeds and propagule type influence translocation success in the endangered Whibley wattle, Acacia whibleyana (Leguminosae: Mimosoideae). Ecological Management & Restoration 9, 72–76.
Weeds and propagule type influence translocation success in the endangered Whibley wattle, Acacia whibleyana (Leguminosae: Mimosoideae).Crossref | GoogleScholarGoogle Scholar |

Jusaitis M, Polomka L, Sorensen B (2004) Habitat specificity, seed germination and experimental translocation of the endangered herb Brachycome muelleri (Asteraceae). Biological Conservation 116, 251–266.
Habitat specificity, seed germination and experimental translocation of the endangered herb Brachycome muelleri (Asteraceae).Crossref | GoogleScholarGoogle Scholar |

Kaye TN, Brandt A (2005) ‘Seeding and transplanting rare Willamette Valley prairie plants for population restoration. Final Report.’ (Institute for Applied Ecology: Corvallis, OR, USA)

Koch JM (2007) Restoring a jarrah forest understorey vegetation after bauxite mining in Western Australia. Restoration Ecology 15, S26–S39.
Restoring a jarrah forest understorey vegetation after bauxite mining in Western Australia.Crossref | GoogleScholarGoogle Scholar |

Kodym A, Turner S, Delpratt J (2010) In situ seed development and in vitro regeneration of three difficult to propagate Lepidosperma species (Cyperaceae). Australian Journal of Botany 58, 107–114.
In situ seed development and in vitro regeneration of three difficult to propagate Lepidosperma species (Cyperaceae).Crossref | GoogleScholarGoogle Scholar |

Ladouceur E, Jiménez‐Alfaro B, Marin M, Vitis M, Abbandonato H, Iannetta PP, Bonomi C, Pritchard HW (2017) Native seed supply and the restoration species pool. Conservation Letters
Native seed supply and the restoration species pool.Crossref | GoogleScholarGoogle Scholar |

Lakon G (1949) The topographical tetrazolium method for determining the germinating capacity of seeds. Plant Physiology 24, 389–394.
The topographical tetrazolium method for determining the germinating capacity of seeds.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaH1MXksVChuw%3D%3D&md5=0e26080493c303bfdeec03c2d497d8e5CAS |

Livingston E (1910) Relation of soil moisture to desert vegetation. Botanical Gazette 50, 241–256.
Relation of soil moisture to desert vegetation.Crossref | GoogleScholarGoogle Scholar |

Luke GJ, Burke KL, O’Brien TM (1987) Evaporation data for Western Australia. Report 65’ Department of Agriculture and Food, Western Australia. Available at http://researchlibrary.agric.wa.gov.au/rmtr/59/ [Verified 17 November 2017].

Martin AC (1946) The comparative internal morphology of seeds. American Midland Naturalist 36, 513–660.
The comparative internal morphology of seeds.Crossref | GoogleScholarGoogle Scholar |

Maschinski J, Baggs JE, Sacchi CF (2004) Seedling recruitment and survival of an endangered limestone endemic in its natural habitat and experimental reintroduction sites. American Journal of Botany 91, 689–698.
Seedling recruitment and survival of an endangered limestone endemic in its natural habitat and experimental reintroduction sites.Crossref | GoogleScholarGoogle Scholar |

Menges ES, Smith SA, Weekley CW (2016) Adaptive introductions: how multiple experiments and comparisons to wild populations provide insights into requirements for long-term introduction success of an endangered shrub. Plant Diversity 38, 238–246.
Adaptive introductions: how multiple experiments and comparisons to wild populations provide insights into requirements for long-term introduction success of an endangered shrub.Crossref | GoogleScholarGoogle Scholar |

Merino-Martín L, Commander L, Mao Z, Stevens JC, Miller BP, Golos PJ, Mayence CE, Dixon K (2017a) Overcoming topsoil deficits in restoration of semiarid lands: designing hydrologically favourable soil covers for seedling emergence. Ecological Engineering 105, 102–117.
Overcoming topsoil deficits in restoration of semiarid lands: designing hydrologically favourable soil covers for seedling emergence.Crossref | GoogleScholarGoogle Scholar |

Merino-Martín L, Courtauld C, Commander L, Turner SR, Lewandrowski W, Stevens J (2017b) Interactions between seed functional traits and burial depth regulate germination and seedling emergence under water stress in species from semiarid environments. Journal of Arid Environments 147, 25–33.
Interactions between seed functional traits and burial depth regulate germination and seedling emergence under water stress in species from semiarid environments.Crossref | GoogleScholarGoogle Scholar |

Merritt DJ, Dixon KW (2011) Restoration seed banks – a matter of scale. Science 332, 424–425.
Restoration seed banks – a matter of scale.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3MXmtVOrt7Y%3D&md5=0e5da080f4ec4fc08fad61f4432441bcCAS |

Merritt DJ, Turner SR, Clarke S, Dixon KW (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 |

Michel BE (1983) Evaluation of the water potentials of solutions of polyethylene glycol 8000 both in the absence and presence of other solutes. Plant Physiology 72, 66–70.
Evaluation of the water potentials of solutions of polyethylene glycol 8000 both in the absence and presence of other solutes.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaL3sXktFyqtbw%3D&md5=d8ae827edc07a8a0fee4c4ee40d26e7cCAS |

Miller B, Barrett M (2010) ‘Darwinia masonii and Lepidosperma gibsonii conservation and restoration research. Report to sponsors.’ (Botanic Garden and Parks Authority: Kings Park, Perth, WA)

Miller BP, Sinclair EA, Menz MHM, Elliott CP, Bunn E, Commander LE, Dalziell E, David E, Davis B, Erickson TE, Golos PJ, Krauss SL, Lewandrowski W, Mayence E, Merino-Martín L, Merritt DJ, Nevill PG, Phillips RD, Ritchie AL, Ruoss S, Stevens JC (2017) A framework for the practical science necessary to restore sustainable, resilient, and biodiverse ecosystems. Restoration Ecology 25, 605–617.
A framework for the practical science necessary to restore sustainable, resilient, and biodiverse ecosystems.Crossref | GoogleScholarGoogle Scholar |

Monks L, Coates D, Bell T, Bowles M (2012) Determining success criteria for reintroductions of threatened long-lived plants. In ‘Plant reintroduction in a changing climate: promises and perils’. (Eds J Maschinski, KE Haskins) pp. 189–208. (Island Press: Washington, DC, USA)

Offord CA, Meagher PF (Eds) (2009) ‘Plant germplasm conservation in Australia.’ (Australian Network for Plant Conservation Inc.: Canberra, ACT)

Paparella S, Araújo S, Rossi G, Wijayasinghe M, Carbonera D, Balestrazzi A (2015) Seed priming: state of the art and new perspectives. Plant Cell Reports 34, 1281–1293.
Seed priming: state of the art and new perspectives.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC2MXlsVOhtrg%3D&md5=1101dc23376cdbe0222f6e5bf4df497eCAS |

R Development Core Team (2013) ‘R: A language and environment for statistical computing.’ (R Foundation for Statistical Computing: Vienna) Available at http://www.R-project.org/ [Verified 6 May 2017].

Ritz C, Streibig JC (2005) Bioassay analysis using R. Journal of Statistical Software 12, 1–22.
Bioassay analysis using R.Crossref | GoogleScholarGoogle Scholar |

Ritz C, Baty F, Streibig JC, Gerhard D (2015) Dose-response analysis using R. PLoS One 10, e0146021
Dose-response analysis using R.Crossref | GoogleScholarGoogle Scholar |

Roche S, Koch JM, Dixon KW (1997) Smoke enhanced seed germination for mine rehabilitation in the southwest of Western Australia. Restoration Ecology 5, 191–203.
Smoke enhanced seed germination for mine rehabilitation in the southwest of Western Australia.Crossref | GoogleScholarGoogle Scholar |

Rokich DP (2016a) Melding of research and practice to improve restoration of Banksia woodlands after sand extraction, Perth, Western Australia. Ecological Management & Restoration 17, 112–123.
Melding of research and practice to improve restoration of Banksia woodlands after sand extraction, Perth, Western Australia.Crossref | GoogleScholarGoogle Scholar |

Rokich DP (2016b) Seedling production and planting, In Banksia woodlands – a guide to their restoration on the Swan Coastal Plain. (Eds JC Stevens, DP Rokich, VJ Newton, RL Barrett, KW Dixon) pp. 183–185. (The University of Western Australia Press: Crawley, WA)

Rokich DP, Dixon KW (2007) Recent advances in restoration ecology, with a focus on the Banksia woodland and the smoke germination tool. Australian Journal of Botany 55, 375–389.
Recent advances in restoration ecology, with a focus on the Banksia woodland and the smoke germination tool.Crossref | GoogleScholarGoogle Scholar |

Rokich DP, Dixon KW, Sivasithamparam K, Meney KA (2002) Smoke, mulch, and seed broadcasting effects on woodland restoration in Western Australia. Restoration Ecology 10, 185–194.
Smoke, mulch, and seed broadcasting effects on woodland restoration in Western Australia.Crossref | GoogleScholarGoogle Scholar |

Society for Ecological Restoration International Science and Policy Working Group (2004) ‘The SER international primer on ecological restoration.’ (Society for Ecological Restoration: Washington DC, USA)

Sutherland LA (2014) The Australian seed bank partnership’s contributions to the global strategy for plant conservation. Australasian Plant Conservation 22, 6–8.

Thanos CA, Georghiou K, Skarou F (1989) Glaucium flavum seed germination – an ecophysiological approach. Annals of Botany 63, 121–130.
Glaucium flavum seed germination – an ecophysiological approach.Crossref | GoogleScholarGoogle Scholar |

Tobe K, Zhang L, Omasa KI (2005) Seed germination and seedling emergence of three annuals growing on desert sand dunes in China. Annals of Botany 95, 649–659.
Seed germination and seedling emergence of three annuals growing on desert sand dunes in China.Crossref | GoogleScholarGoogle Scholar |

Turner SR, Merritt DJ, Baskin CC, Dixon KW, Baskin JM (2005) Physical dormancy in seeds of six genera of Australian Rhamnaceae. Seed Science Research 15, 51–58.
Physical dormancy in seeds of six genera of Australian Rhamnaceae.Crossref | GoogleScholarGoogle Scholar |

Turner SR, Merritt DJ, Renton MS, Dixon KW (2009) Seed moisture content affects after-ripening and smoke responsiveness in three sympatric Australian native species from fire-prone environments. Austral Ecology 34, 866–877.
Seed moisture content affects after-ripening and smoke responsiveness in three sympatric Australian native species from fire-prone environments.Crossref | GoogleScholarGoogle Scholar |

Vallee L, Hogbin T, Monks L, Makinson B, Matthes M, Rossetto M (2004) ‘Guidelines for the translocation of threatened plants in Australia.’ (2nd edn) (Australian Network for Plant Conservation: Canberra, ACT)

Vincent BJ, Barrett S, Cochrane A, Plummer JA, Renton M (2015) Conservation biology of two endemic Beyeria species (Euphorbiaceae) from southern Western Australia. Australian Journal of Botany 63, 484–496.
Conservation biology of two endemic Beyeria species (Euphorbiaceae) from southern Western Australia.Crossref | GoogleScholarGoogle Scholar |

Western Australian Herbarium (1998) ‘FloraBase – the Western Australian flora.’ (Department of Parks and Wildlife) Available at https://florabase.dpaw.wa.gov.au/ [Verified 17 November 2017].

Willyams D (2005) Tissue culture of geophytic rush and sedge species for revegetation of bauxite mine sites in the northern Jarrah forest of Western Australia. In ‘Contributing to a sustainable future. Proceedings of the Australian branch of the IAPTC&B, Perth, Western Australia, 21–24 September 2005’. (Eds IJ Bennet, E Bunn, H Clarke, JA McComb) pp. 226–241. (The Australasian Plant Breeding Association Inc.: Melbourne, Vic, Australia)

Wulff AS, Turner SR, Fogliani B, L’Huillier L (2012) Smoke stimulates germination in two divergent Gondwanan species (Hibbertia pancheri and Scaevola montana) endemic to the biodiversity hotspot of New Caledonia. Seed Science Research 22, 311–316.
Smoke stimulates germination in two divergent Gondwanan species (Hibbertia pancheri and Scaevola montana) endemic to the biodiversity hotspot of New Caledonia.Crossref | GoogleScholarGoogle Scholar |