The greater the proportion of Robinia pseudoacacia in a stand the greater its effect on the population characteristics of Erythronium dens-canis
Authors/Creators
- 1. Hungarian University of Agriculture and Life Sciences, Keszthely, Hungary
Description
Management of invasive alien plants is an increasing problem throughout the world. In some cases native rare or protected species can appear or even prefer habitats dominated by invasive alien plants, which raises questions about the optimal treatment of such areas. Erythronium dens-canis in Hungary is a protected species which only have several occurrences in the country and a number of these populations situated in Robinia pseudoacacia stands developed after harvesting native forests. In this study a total of five populations of E. dens-canis were surveyed between 2020 and 2022 in southwestern Hungary examining and comparing the ongoing demographic changes under native and Robinia stands by monitoring individual plants. Two populations were situated in forests composed of native tree species, two in Robinia pseudoacacia-dominated stands and one in a Robinia-native tree species mixed stand. We categorized the plants into five age-state categories: dormant, seedling, juvenile, vegetative adult, and reproductive adult. We found some considerable differences (e.g. leaf size, reproduction rate) between the populations situated in native and in Robinia stands, whereas the population in mixed forest showed intermediate character in most examined factors. Based on our results, R. pseudoacacia have a significant effect on the phenology and life history of E. dens-canis, and this effect is greater with higher proportion of R. pseudoacacia in a forest stand where the E. dens-canis occurs.
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References
- Bagi I, Kovács G, Székely Á (1998) A Crocus reticulatus Stev. Előfordulása a kunfehértói holdrutás erdőben. Kitaibelia 3(2): 231–233. [in Hungarian]. http://kitaibelia.unideb.hu/articles/Kitaibelia_vol32_p231-233.pdf
- Brana S, Vukovic N, Kaligarič M (2014) Least adder's-tongue (Ophioglossum lusitanicum L.) in Croatia – distribution, ecology and conservation. Acta Botanica Croatica 73(2): 471–480. https://doi.org/10.2478/botcro-2014-0015
- Buzhdygan OY, Rudenko SS, Kazanci C, Patten BC (2016) Effect of invasive black locust (Robinia pseudoacacia L.) on nitrogen cycle in floodplain ecosystem. Ecological Modelling 319: 170–177. https://doi.org/10.1016/j.ecolmodel.2015.07.025
- Celesti-Grapow L, Pretto F, Brundu G, Carli E, Blasi C (2009) A Thematic Contribution to the National Biodiversity Strategy. Plant Invasion in Italy, an Overview. Ministry for the Environment Land and Sea Protection, Nature Protection Directorate, Roma, 36 pp. https://www.mase.gov.it/sites/default/files/archivio/biblioteca/protezione_natura/dpn_plant_invasion_italy.pdf
- Cierjacks A, Kowarik I, Joshi J, Hempel S, Ristow M, von der Lippe M, Weber E (2013) Biological flora of the British Isles: Robinia pseudoacacia. Journal of Ecology 101(6): 1623–1640. https://doi.org/10.1111/1365-2745.12162
- Crawley MJ (1990) The population dynamics of plants. Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences 330(1257): 125–140. https://doi.org/10.1098/rstb.1990.0187
- Daehler CC, Strong DR (1994) Native plant biodiversity vs. The introduced invaders: status of the conflict and future management options. In: Majumdar SK, Brenner FJ, Lovich JE, Schalles JF, Miller EW (Eds) Biological Diversity: Problems and Challenges. Pennsylvania Academy of Science, Easton, PA, 92–113.
- De Marco A, Arena C, Giordano M, De Santo AV (2013) Impact of the invasive tree black locust on soil properties of Mediterranean stone pine-holm oak forests. Plant and Soil 372(1–2): 473–486. https://doi.org/10.1007/s11104-013-1753-6
- Delvallée I, Paffen A, De Klerk GJ (1990) The development of dormancy in bulblets of Lilium speciosum generated in vitro. 2. The effect of temperature. Physiologia Plantarum 80(3): 431–436. https://doi.org/10.1111/j.1399-3054.1990.tb00063.x
- Didham RK, Tylianakis JM, Gemmell NJ, Rand TA, Ewers RM (2007) Interactive effects of habitat modification on species invasion and native species decline. Trends in Ecology & Evolution 22(9): 489–496. https://doi.org/10.1016/j.tree.2007.07.001
- Eriksson O (1989) Seedling dynamics and life histories in clonal plants. Oikos 55(2): 231–238. https://doi.org/10.2307/3565427
- FOEN [Federal Office for the Environment] (2010) Switzerland's Fourth National Report under the Convention on Biological Diversity. Swiss Confederation, Bern, 132 pp. https://www.cbd.int/doc/world/ch/ch-nr-04-en.pdf
- Gaertner M, Den Breeyen A, Hui C, Richardson DM (2009) Impacts of alien plant invasions on species richness in Mediterranean-type ecosystems: A meta-analysis. Progress in Physical Geography 33(3): 319–338. https://doi.org/10.1177/0309133309341607
- Gederaas L, Loennechen Moen T, Skjelseth S, Larsen LK (2012) Alien species in Norway – with the Norwegian Black List 2012. The Norwegian Biodiversity Information Centre (NBIC), Norway, 214. https://www.artsdatabanken.no /Files/13960/Alien_Species_in_Norway_-_with_the_Norwegian_Black_List_2012
- Göhre K (1952) Die Robinie Und Ihr Holz. Deutscher Bauernverlag, Berlin, 287–326.
- Guitián J, Guitián P, Medrano M, Sanchez JM (1999) Variation in floral morphology and individual fecundity in Erythronium dens-canis (Liliaceae). Ecography 22(6): 708–714. https://doi.org/10.1111/j.1600-0587.1999.tb00520.x
- Guitián P, Medrano M, Guitián J (2003) Seed dispersal in Erythronium dens-canis L. (Liliaceae): Variation among habitats in a myrmecochorous plant. Plant Ecology 169(2): 171–177. https://doi.org/10.1023/A:1026043411357
- Guo Q, Wen Z, Zheng C, Li W, Fan Y, Zhu D (2021) Effects of Robinia pseudoacacia on the undergrowth of herbaceous plants and soil properties in the Loess Plateau of China. Journal of Plant Ecology 14(5): 896–910. https://doi.org/10.1093/jpe/rtab041
- Hejda M, Pyšek P (2006) What is the impact of Impatiens glandulifera on species diversity of invaded riparian vegetation? Plant Ecology 132: 143–152. https://doi.org/10.1007/s11258-018-0898-z
- Hernández DL, Vallano DM, Zavaleta ES, Tzankova Z, Pasari JR, Weiss S, Selmants PC, Morozumi C (2016) Nitrogen pollution is linked to US listed species declines. Bioscience 66(3): 213–222. https://doi.org/10.1093/biosci/biw003
- Holland PG (1974) The growth behavior, ecology, and geography of Erythronium americanum in northeast North America. Canadian Journal of Botany 52(7): 1765–1772. https://doi.org/10.1139/b74-228
- Holland PG (1980) Trout lily in Nova Scotia: An assessment of the status of its geographic range. Journal of Biogeography 7(4): 363–381. https://doi.org/10.2307/2844656
- Holland PG (1981) The demography of trout lily (Erythronium americanum Ker.) in Nova Scotia. Vegetatio 45(2): 97–106. https://doi.org/10.1007/BF00119219
- Hruška K (1991) Human impact on the forest vegetation in the western part of the Pannonic Plain (Yugoslavia). Vegetatio 92(2): 161–166. https://doi.org/10.1007/BF00036036
- Hughes JW (1992) Effect of removal of co-occurring species on distribution and abundance of Erythronium americanum (Liliaceae), a spring ephemeral. American Journal of Botany 79(12): 1329–1336. https://doi.org/10.2307/2445130
- Hurdu BI, Coste A, Halmagyi A, Szatmari PM, Farkas A, Pușcaș M, Turtureanu PD, Rosca-Casian O, Tanase C, Oprea A, Mardari C, Radutoiu D, Camen-Comanescu P, Sirbu I-M, Stoie A, Lupoae P, Cristea V, Jarda L, Holobiuc I, Goia I, Butiuc-Keul A (2022) Ex situ conservation of plant diversity in Romania: A synthesis of threatened and endemic taxa. Journal for Nature Conservation 68: 126211. https://doi.org/10.1016/j.jnc.2022.126211
- Jeong H, Cho YC, Kim E (2022) Site-specific temporal variation of population dynamics in subalpine endemic plant species. Scientific Reports 12: 19207. https://doi.org/10.1038/s41598-022-23903-5
- Kawano S (2005) Life-history monographs of Japanese plants. 1: Erythronium japonicum Decne. (Liliaceae). Plant Species Biology 20(1): 67–74. https://doi.org/10.1111/j.1442-1984.2005.00125.x
- Kawano S, Takasu H, Nagai Y (1978) The productive and reproductive biology of flowering plants. IV. Assimilation behaviour of some temperate woodland herbs. Journal of Liberal Arts and Humanities, Toyama Univ. Japan. 11: 33–60. https://doi.org/10.1007/BF00540197
- Kawano S, Hiratsuka A, Hayashi K (1982) Life history characteristics and survivorship of Erythronium japonicum. The productive and reproductive biology of flowering plants V. Oikos 38(2): 129–149. https://doi.org/10.2307/3544013
- Király G (2007) Vörös Lista. A magyarorszagi edényes flóra veszélyeztett fajai. Red list of the vascular flora of Hungary. Private edition, Sopron, 73 pp.
- Király G ([ed.] 2009) Új magyar füvészkönyv. Magyarország hajtásos növényei. Határozókulcsok. ANP Igazgatóság, Jósvafő, 616 pp. [in Hungarian]
- Kricsfalusy M (2016) Variations in the life cycle of Anemone patens L. (Ranunculaceae) in wild populations of Canada. Plants 5(3): 29. https://doi.org/10.3390/plants5030029
- Kricsfalusy M, Mihaly AV (1993) Chorological and ecology-phytocoenotic peculiarities of ephemeroid geophytes of the Ukrainian Carpathians. Ukrainskyi Botanichnyi Zhurnal 50: 13–22. [in Russian]
- Kricsfalusy M, Komendar VI, Mező-Kricsfalusi GN, Szabados VI, Fesenko SS, Shumskaya NV (1987) Study on reproductive biology of ephemeroids in the Tisza River basin (Transcarpathia). Tiscia 22: 61–73. [in Russian]
- Kricsfalusy M, Shushman V, Saroz OE (1995) Biomorphological and ecocoenotic characteristics of Erythronium dens-canis (Liliaceae) in the Carpathians. Botanicheskii Zhurnal 80: 35–52. [in Russian]
- KSH (2023) A faállománnyal borított erdőterület és az élőfakészlet megoszlása fafajcsoportok és korosztályok szerint, december 31. (2000–). https://www.ksh.hu/docs/hun/xstadat/xstadat_eves/i_ome002b.html
- La Rocca N, Pupillo P, Puppi G, Rascio N (2014) Erythronium dens-canis L.: An unusual case of leaf mottling. Plant Physiology and Biochemistry 74: 108–117. https://doi.org/10.1016/j.plaphy.2013.11.005
- McKinney ML, Lockwood JL (1999) Biotic homogenization: A few winners replacing many losers in the next mass extinction. Trends in Ecology & Evolution 14(11): 450–453. https://doi.org/10.1016/S0169-5347(99)01679-1
- Medina-Villar S, Castro-Díez P, Alonso A, Cabra-Rivas I, Parker IM, Pérez-Corona E (2015) Do the invasive trees, Ailanthus altissima and Robinia pseudoacacia, alter litterfall dynamics and soil properties of riparian ecosystems in Central Spain? Plant and Soil 396(1–2): 311–324. https://doi.org/10.1007/s11104-015-2592-4
- Mihály B, Botta-Dukát Z (2006) Özönnövények: biológiai inváziók Magyarországon I. Budapest, 426 pp.
- Miller MT, Antos JA, Allen GA (2004) Dormancy and flowering in two mariposa lilies (Calochortus) with contrasting distribution patterns. Canadian Journal of Botany 82(12): 1790–1799. https://doi.org/10.1139/b04-144
- Mondoni A, Rossi G, Probert R (2012) Temperature controls seed germination and dormancy in the European woodland herbaceous perennial Erythronium dens-canis (Liliaceae). Plant Biology 14(3): 475–480. https://doi.org/10.1111/j.1438-8677.2011.00517.x
- Montagnini F, Haines B, Swank WT (1991) Soil-solution chemistry in black locust, pine mixed-hardwoods and oak hickory forest stands in the Southern Appalachians, USA. Forest Ecology and Management 40(3–4): 199–208. https://doi.org/10.1016/0378-1127(91)90039-X
- Muller RN, Bormann FH (1976) Role of Erythronium americanum Ker. In energy flow and nutrient dynamics of a northern hardwood forest ecosystem. Science 193(4258): 1126–1128. https://doi.org/10.1126/science.193.4258.1126
- Nagy T, Pfliegler WP, Takács A, Tökölyi J, Molnár VA (2019) Distribution, infection rates and DNA barcoding of Uromyces erythronii (Pucciniaceae), a parasite of Erythronium (Liliaceae) in Europe. Willdenowia 49(1): 13–20. https://doi.org/10.3372/wi.49.49103
- Nascimbene J, Marini L (2010) Oak forest exploitation and black-locust invasion caused severe shifts in epiphytic lichen communities in Northern Italy. Science of The Total Environment 408: 5506–5512. https://doi.org/10.1016/j.scitotenv.2010.07.056
- Niklfeld H, Schratt-Ehrendorfer L (1999) Rote Liste gefährdeter Farn-und Blütenpflanzen (Pteridophyta und Spermatophyta) Österreichs. 2. Fassung. Rote Listen gefährdeter Pflanzen Österreichs 2: 33–152. [in German]
- Pacsai B, Fülöp B, Bódis J (2022) A kakasmandikó (Erythronium dens-canis L.) demográfiai kutatásának módszertani megalapozása. Botanikai Közlemények 109(2): 201–217. [in Hungarian] https://doi.org/10.17716/BotKozlem.2022.109.2.201
- Peloquin RL, Hiebert RD (1999) The effects of black locust (Robinia pseudoacacia L.) on species diversity and composition of black oak savanna/woodland communities. Natural Areas Journal 19: 121–131.
- Pergl J, Sádlo J, Petrusek A, Laštůvka Z, Musil J, Perglová I, Šanda R, Šefrová H, Šíma J, Vohralík V, Pyšek P (2016) Black, Grey and Watch Lists of alien species in the Czech Republic based on environmental impacts and management strategy. NeoBiota 28: 1–37. https://doi.org/10.3897/neobiota.28.4824
- Perrino EV, Ladisa G, Calabrese G (2014) Flora and plant genetic resources of ancient olive groves of Apulia (Southern Italy). Genetic Resources and Crop Evolution 61(1): 23–53. https://doi.org/10.1007/s10722-013-0013-1
- Perrino EV, Tomaselli V, Wagensommer RP, Silletti GN, Esposito A, Stinca A (2022) Ophioglossum lusitanicum L.: New Records of Plant Community and 92/43/EEC Habitat in Italy. Agronomy (Basel) 12(12): 3188. https://doi.org/10.3390/agronomy12123188
- Perrino EV, Mahmoud ZNA, Valerio F, Tomaselli V, Wagensommer RP, Trani A (2023) Synecology of Lagoecia cuminoides L. in Italy and evaluation of functional compounds presence in its water or hydroalcoholic extracts. Scientific Reports 13(1): 20906. https://doi.org/10.1038/s41598-023-48065-w
- Pimentel D, McNair S, Janecka J, Wightman J, Simmonds C, O'Connell C, Wong E, Russel L, Zern J, Aquino T, Tsomondo T (2001) Economic and environmental threats of alien plant, animal, and microbe invasions. Agriculture, Ecosystems & Environment 84(1): 1–20. https://doi.org/10.1016/S0167-8809(00)00178-X
- Pupillo P, Astuti G (2017) Population structure of Erythronium dens-canis L. (Liliaceae) in the northern Apennines (Italy). Italian Botanist 4: 1–14. https://doi.org/10.3897/ib.4.12439
- Pyšek P, Danihelka J, Sádlo J, Chrtek Jr J, Chytrý M, Jarošík V, Kaplan Z, Krahulec F, Moravcová L, Pergl J, Štajerová K, Tichý L (2012) Catalogue of alien plants of the Czech Republic (2nd edition): checklist update, taxonomic diversity and invasion patterns. Preslia 84: 155–255. https://www.preslia.cz/P122Pysek.pdf
- R Core Team (2015) R: A language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria. https://www.R-project.org/
- Rabotnov TA (1985) Dynamics of Plant Coenotic Populations. In: White J (Ed.) The Population Structure of Vegetation. Handbook of Vegetation Science, vol 3. Springer, Dordrecht, 121–142. https://doi.org/10.1007/978-94-009-5500-4_6
- Rice SK, Westerman B, Federici R (2004) Impacts of the exotic, nitrogen-fixing black locust (Robinia pseudoacacia) on nitrogen-cycling in a pine–oak ecosystem. Plant Ecology 174(1): 97–107. https://doi.org/10.1023/B:VEGE.0000046049.21900.5a
- Richardson DM, Rejmánek M (2011) Trees and shrubs as invasive species — A global review. Diversity & Distributions 17(5): 788–809. https://doi.org/10.1111/j.1472-4642.2011.00782.x
- Rooney TP, Wiegmann SM, Rogers DA, Waller DM (2004) Biotic impoverishment and homogenization in unfragmented forest understory. Conservation Biology 18(3): 787–798. https://doi.org/10.1111/j.1523-1739.2004.00515.x
- Ruhren S, Dudash MR (1996) Consequences of the timing of seed release of Erythronium americanum (Liliaceae), a deciduous forest myrmecochore. American Journal of Botany 83(5): 633–640. https://doi.org/10.1002/j.1537-2197.1996.tb12749.x
- Sawada S, Chida S, Sawaguchi Y, Nagasawa N (1997) Dry matter production, population structure and environmental conditions of the spring ephemeral Erythronium japonicum growing in various habitats differing in sunlight exposure in cool temperate Japan. Ecological Research 12(1): 89–99. https://doi.org/10.1007/BF02523614
- Seitz B, Nehring S (2013) Naturschutzfachliche Invasivitätsbewertung. Robinia pseudoacacia – Robinie. In: Nehring S, Kowarik I, Rabitsch W, Essl F (Eds) Naturschutzfachliche Invasivitätsbewertungen für in Deutschland wild lebende gebietsfremde Gefäßpflanzen. BfN-Skripten 352, Bundesamt für Naturschutz, Bonn, 168–169. [in German]
- Sitzia T, Campagnaro T, Kotze DJ, Nardi S, Ertani A (2018) The invasion of abandoned fields by a major alien tree filters understory plant traits in novel forest ecosystems. Scientific Reports 8(1): 8410. https://doi.org/10.1038/s41598-018-26493-3
- Straker KC, Quinn LD, Voigt TB, Lee DK, Kling GJ (2015) Black locust as a bioenergy feedstock: A review. BioEnergy Research 8(3): 1117–1135. https://doi.org/10.1007/s12155-015-9597-y
- Stubben C, Milligan B (2007) Estimating and analyzing demographic models using the popbio package in R. Journal of Statistical Software 22(11): 1–23. https://doi.org/10.18637/jss.v022.i11
- Takada T, Nakayama S, Kawano S (1998) A sensitivity analysis of the population dynamics of Erythronium japonicum, a liliaceous perennial. Plant Species Biology 13(2–3): 117–127. https://doi.org/10.1111/j.1442-1984.1998.tb00253.x
- Taniguchi T, Kanzaki N, Tamai S, Yamanaka N, Futai K (2007) Does ectomycorrhizal fungal community structure vary along a Japanese black pine (Pinus thunbergii) to black locust (Robinia pseudoacacia) gradient? The New Phytologist 173(2): 322–334. https://doi.org/10.1111/j.1469-8137.2006.01910.x
- Tatarenko I (2019) Having a break: Prolonged dormancy observed in a rare species, Fritillaria meleagris. Environment and Human: Ecological Studies 9(3): 302–324. https://doi.org/10.31862/2500-2961-2019-9-3-302-324
- Tessier JT (2019) Early spring warming may hasten leaf emergence in Erythronium americanum. American Journal of Botany 106(10): 1392–1396. https://doi.org/10.1002/ajb2.1367
- Tilman D, Fargione J, Wolff B, D'Antonio C, Dobson A, Howarth R, Schindler D, Schlesinger WH, Simberloff D, Swackhamer D (2001) Forecasting agriculturally driven global environmental change. Science 292(5515): 281–284. https://doi.org/10.1126/science.1057544
- Turis P, Kliment J, Feráková V, Dítě D, Eliáš P, Hrivnák R, Koštal J, Šuvada R, Mráz P, Bernátová D (2014) Red List of vascular plants of the Carpathian part of Slovakia. Thaiszia Journal of Botany 24(1): 35–87.
- Tykhonenko YY, Sytschak NN, Kagalo AA, Orlov OO (2017) New records of Uromyces erythronii (Pucciniales) from Ukraine. Ukrains'kyi Botanichnyi Zhurnal. Ukrains'ke Botanichne Tovarystvo 74(2): 184–188. https://doi.org/10.15407/ukrbotj74.02.184
- Tyler C, Borchert M (2002) Reproduction and growth of the chaparral geophyte, Zigadenus fremontii (Liliaceae), in relation to fire. Plant Ecology 165(1): 11–20. https://doi.org/10.1023/A:1021460025277
- Vacek S, Linda R, Králíček I, Vančura K, Prokůpková A, Prausová R (2020) Effect of structure and dynamics of forests on the occurrence of Erythronium dens-canis. Journal of Forest Science 66(9): 349–360. https://doi.org/10.17221/96/2020-JFS
- Vadas E (1914) Die Monographie Der Robinie Mit Besonderer Rücksicht Auf Ihre Forstwirtschaftliche Bedeutung. Verlag August Joerges WWE & Sohn, Selmecbánya, 252 pp.
- Vilá M, Basnou C, Pyšek P, Josefsson M, Genovesi P, Gollasch S, Nentwig W, Olenin S, Roques A, Roy D, Hulme PE (2010) How well do we understand the impacts of alien species on ecosystem services? A pan-European, cross-taxa assessment. Frontiers in Ecology and the Environment 8(3): 134–144. https://doi.org/10.1890/080083
- Vítková M, Pergl J, Sádlo J (2016) Black locust: from global ecology to local management – a case study from the Czech Republic. In: Krumm F, Vítková L (Eds) Introduced tree species in European forests: opportunities and challenges. European Forest Institute, 423 pp. http://in-tree.org/uploads/images/book/Introduced_tree_species_EN_HighRes.pdf
- Vítková M, Müllerová J, Sádlo J, Pergl J, Pyšek P (2017) Black locust (Robinia pseudoacacia) beloved and despised: A story of an invasive tree in Central Europe. Forest Ecology and Management 384: 287–302. https://doi.org/10.1016/j.foreco.2016.10.057
- Von Holle B, Joseph KA, Largay EF, Lohnes RG (2006) Facilitations between the introduced nitrogen-fixing tree, Robinia pseudoacacia, and nonnative plant species in the glacial outwash upland ecosystem of cape cod, MA. Biodiversity and Conservation 15(7): 2197–2215. https://doi.org/10.1007/s10531-004-6906-8
- Wendelberger G (1954) Die Robinie in den kontinentalen Trockenwäldern Mittelund Osteuropas. Allgemeine Forstzeit 65: 237–239. [in German]
- Yokoi Y (1976) Growth and reproduction in higher plants II. Analytical study of growth and reproduction of Erythronium japonicum. Botanical Magazine Tokyo 89(1): 15–31. https://doi.org/10.1007/BF02489531