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Seed trapping or a nurse effect? Disentangling the drivers of fine-scale plant species association patterns in a windy environment

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Abstract

Plant co-occurrence patterns can be driven by both abiotic and biotic conditions. Biotic interactions can affect the co-occurrence of seedlings and adult plants through the nurse effect, a form of facilitation where adult plants create favourable conditions for seedlings. However, other mechanisms, including seed trapping, can also cause the aggregation of seedlings around adult plants, resulting in similar co-occurrence patterns as the nurse effect, but this is yet to be examined. This study, therefore, tests if seed trapping drives co-occurrence patterns of two dominant plant species on sub-Antarctic Marion Island; the grass Agrostis magellanica and the cushion plant Azorella selago. We compared A. magellanica seed, seedling and reproductive plant densities around A. selago plants, around similarly sized rocks and on the adjacent substrate. The abundance of A. magellanica seeds and seedlings did not differ significantly between different substrate types or direction (reflecting differing wind exposure). The abundance of mature A. magellanica individuals was significantly related to both substrate and wind exposure, although only weakly so. This suggests that neither cushion plants nor rocks trap seeds and that the high densities of A. magellanica observed with A. selago reflect stage-specific facilitation (i.e. improving the growth and/or survival of established plants). However, this is not consistently the case since complementary seed density datasets demonstrated that under some conditions cushion plants do act as seed traps. This study, therefore, highlights the need to explicitly consider the role of both seed dispersal and biotic interactions in plant communities, particularly before inferring nurse effects based on spatial co-occurrence patterns.

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References

  • Aerts R et al (2006) Surface runoff and seed trapping efficiency of shrubs in a regenerating semiarid woodland in northern Ethiopia. CATENA 65:61–70

    Article  Google Scholar 

  • Aguiar MR, Sala OE (1994) Competition, facilitation, seed distribution and the origin of patches in a Patagonian steppe. Oikos 70:26–34

    Article  Google Scholar 

  • Anthelme F, Cavieres LA, Dangles O (2014) Facilitation among plants in alpine environments in the face of climate change. Front Plant Sci 5:387

    Article  PubMed  PubMed Central  Google Scholar 

  • Antonsson H, Björk RG, Molau U (2009) Nurse plant effect of the cushion plant Silene acaulis (L.) Jacq. in an alpine environment in the subarctic Scandes. Sweden Plant Ecol Divers 2:17–25

    Article  Google Scholar 

  • Arroyo M, Cavieres L, Peñaloza A, Arroyo-Kalin M (2003) Positive associations between the cushion plant Azorella monantha (Apiaceae) and alpine plant species in the Chilean Patagonian Andes. Plant Ecol 169:121–129

    Article  Google Scholar 

  • Aubert S, Boucher F, Lavergne S, Renaud J, Choler P (2014) 1914–2014: a revised worldwide catalogue of cushion plants 100 years after Hauri and Schröter. Alp Bot 124:59–70

    Article  Google Scholar 

  • Badano EI, Villarroel E, Bustamante RO, Marquet PA, Cavieres LA (2007) Ecosystem engineering facilitates invasions by exotic plants in high-Andean ecosystems. J Ecol 95:682–688

    Article  Google Scholar 

  • Badano EI, Samour-Nieva OR, Flores J, Flores-Flores JL, Flores-Cano JA, Rodas-Ortíz JP (2016) Facilitation by nurse plants contributes to vegetation recovery in human-disturbed desert ecosystems. J Ecol 9:485–497

    Google Scholar 

  • Bertness MD, Callaway R (1994) Positive interactions in communities. Trends Ecol Evol 9:191–193

    Article  CAS  PubMed  Google Scholar 

  • Blanchet FG, Cazelles K, Gravel D (2020) Co-occurrence is not evidence of ecological interactions. Ecol Lett 23:1050–1063

    Article  PubMed  Google Scholar 

  • Bruno JF, Stachowicz JJ, Bertness MD (2003) Inclusion of facilitation into ecological theory. Trends Ecol Evol 18:119–125

    Article  Google Scholar 

  • Bullock JM, Moy IL (2004) Plants as seed traps: inter-specific interference with dispersal. Acta Oecol 25:35–41

    Article  Google Scholar 

  • Carlsson BA, Callaghan TV (1991) Positive plant interactions in tundra vegetation and the importance of shelter. J Ecol 79:973–983

    Article  Google Scholar 

  • Cavieres LA, Badano EI (2009) Do facilitative interactions increase species richness at the entire community level? J Ecol 97:1181–1191

    Article  Google Scholar 

  • Cavieres L, Arroyo MT, Peñaloza A, Molina-Montenegro M, Torres C (2002) Nurse effect of Bolax gummifera cushion plants in the alpine vegetation of the Chilean Patagonian Andes. J Veg Sci 13:547–554

    Article  Google Scholar 

  • Cavieres LA, Quiroz CL, Molina-Montenegro MA, Muñoz AA, Pauchard A (2005) Nurse effect of the native cushion plant Azorella monantha on the invasive non-native Taraxacum officinale in the high-Andes of central Chile. Perspect Plant Ecol, Evol Syst 7:217–226

    Article  Google Scholar 

  • Cavieres LA, Badano EI, Sierra-Almeida A, Molina-Montenegro MA (2007) Microclimatic modifications of cushion plants and their consequences for seedling survival of native and non-native herbaceous species in the high Andes of central Chile. Arct Antarct Alp Res 39:229–236

    Article  Google Scholar 

  • Cavieres LA et al (2014) Facilitative plant interactions and climate simultaneously drive alpine plant diversity. Ecol Lett 17:193–202

    Article  PubMed  Google Scholar 

  • Chambers JC, MacMahon JA (1994) A day in the life of a seed: movements and fates of seeds and their implications for natural and managed systems. Ann Rev Ecol Syst 25:263–292

    Article  Google Scholar 

  • Chen J et al (2015) Cushion plants can have a positive effect on diversity at high elevations in the Himalayan Hengduan Mountains. J Veg Sci 26:768–777

    Article  CAS  Google Scholar 

  • Combrinck ML, Harms TM, McGeoch MA, Schoombie J, le Roux PC (2020) Wind and seed: a conceptual model of shape-formation in the cushion plant Azorella selago. Plant Soil 455:339–366

    Article  CAS  Google Scholar 

  • Day T, Wright R (1989) Positive plant spatial association with Eriogonum ovalifolium in primary succession on cinder cones: seed-trapping nurse plants. Vegetatio 80:37–45

    Article  Google Scholar 

  • Filazzola A, Lortie CJ (2014) A systematic review and conceptual framework for the mechanistic pathways of nurse plants. Glob Ecol Biogeogr 23:1335–1345

    Article  Google Scholar 

  • Forbis TA (2009) Negative associations between seedlings and adult plants in two alpine plant communities. Arct Antarct Alp Res 41:301–308

    Article  Google Scholar 

  • Frenot Y, Gloaguen J-C (1994) Reproductive performance of native and alien colonizing phanerogams on a glacier foreland, Iles Kerguelen. Polar Biol 14:473–481

    Article  Google Scholar 

  • Friendly M (2017) vcdExtra: ‘vcd’ extensions and additions. R package version 0.7-1. https://CRAN.R-project.org/package=vcdExtra

  • García MC, Bader MY, Cavieres LA (2016) Facilitation consequences for reproduction of the benefactor cushion plant Laretia acaulis along an elevational gradient: costs or benefits? Oikos 125:434–442

    Article  Google Scholar 

  • García-Cervigón AI, Iriondo JM, Linares JC, Olano JM (2016) Disentangling facilitation along the life cycle: impacts of plant–plant interactions at vegetative and reproductive stages in a Mediterranean forb. Front Plant Sci 7:129

    Article  PubMed  PubMed Central  Google Scholar 

  • Germain RM, Strauss SY, Gilbert B (2017) Experimental dispersal reveals characteristic scales of biodiversity in a natural landscape. Proc Natl Acad Sci USA 114:4447–4452

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Gómez-Aparicio L, Zamora R, Gómez JM, Hódar JA, Castro J, Baraza E (2004) Applying plant facilitation to forest restoration: a meta-analysis of the use of shrubs as nurse plants. Ecol Appl 14:1128–1138

    Article  Google Scholar 

  • Gómez-Aparicio L, Zamora R, Castro J, Hódar JA (2008) Facilitation of tree saplings by nurse plants: Microhabitat amelioration or protection against herbivores? J Veg Sci 19:161–172

    Article  Google Scholar 

  • Haussmann NS, Boelhouwers JC, McGeoch MA (2009) Fine scale variability in soil frost dynamics surrounding cushions of the dominant vascular plant species (Azorella selago) on sub-antarctic Marion island. Geogr Ann A 91:257–268

    Article  Google Scholar 

  • Haussmann N, McGeoch M, Boelhouwers J (2010) Contrasting nurse plants and nurse rocks: the spatial distribution of seedlings of two sub-Antarctic species. Acta Oecol 36:299–305

    Article  Google Scholar 

  • He Q, Bertness MD, Altieri AH (2013) Global shifts towards positive species interactions with increasing environmental stress. Ecol Lett 16:695–706

    Article  PubMed  Google Scholar 

  • Hupp N, Llambí LD, Ramírez L, Callaway RM (2017) Alpine cushion plants have species–specific effects on microhabitat and community structure in the tropical Andes. J Veg Sci 28:928–938

    Article  Google Scholar 

  • Isselin-Nondedeu F, Bédécarrats A (2007) Soil microtopographies shaped by plants and cattle facilitate seed bank formation on alpine ski trails. Ecol Eng 30:278–285

    Article  Google Scholar 

  • Jonas T, Rixen C, Sturm M, Stoeckli V (2008) How alpine plant growth is linked to snow cover and climate variability. J Geophys Res Biogeosci 113:G03013

    Article  Google Scholar 

  • Jumpponen A, Väre H, Mattson KG, Ohtonen R, Trappe JM (1999) Characterization of ‘safe sites’ for pioneers in primary succession on recently deglaciated terrain. J Ecol 87:98–105

    Article  Google Scholar 

  • Kikvidze Z, Michalet R, Brooker RW, Cavieres LA, Lortie CJ, Pugnaire FI, Callaway RM (2011) Climatic drivers of plant–plant interactions and diversity in alpine communities. Alp Bot 121:63–70

    Article  Google Scholar 

  • Kleiber C, Zeileis A (2008) Applied econometrics with R. Springer, New York

    Book  Google Scholar 

  • Larcher W, Kainmüller C, Wagner J (2010) Survival types of high mountain plants under extreme temperatures. Flora 205:3–18

    Article  Google Scholar 

  • le Roux PC, McGeoch MA (2008) Spatial variation in plant interactions across a severity gradient in the sub-Antarctic. Oecologia 155:831–844

    Article  PubMed  Google Scholar 

  • le Roux PC, McGeoch MA (2010) Interactions intensity and importance along two stress gradients: adding shape to the stress-gradient hypothesis. Oecologia 163:733–745

    Article  Google Scholar 

  • le Roux PC, McGeoch MA, Nyakatya MJ, Chown SL (2005) Effects of a short-term climate change experiment on a sub-Antarctic keystone plant species. Glob Change Biol 11:1628–1639

    Article  Google Scholar 

  • le Roux PC, Shaw JD, Chown SL (2013) Ontogenetic shifts in plant interactions vary with environmental severity and affect population structure. New Phytol 200:241–250

    Article  PubMed  Google Scholar 

  • Lipoma M, Cuchietti A, Gorne L, Díaz S (2019) Not gone with the wind: vegetation complexity increases seed retention during windy periods in the Argentine Semiarid Chaco. J Veg Sci 30:542–552

    Article  Google Scholar 

  • Loayza AP, Herrera-Madariaga MA, Carvajal DE, García-Guzmán P, Squeo FA (2017) Conspecific plants are better ‘nurses’ than rocks: consistent results revealing intraspecific facilitation as a process that promotes establishment in a hyper-arid environment. AoB Plants 9:plx056

    Article  PubMed  PubMed Central  Google Scholar 

  • Lüdecke D, Makowski D, Waggoner P (2019) Performance: assessment of regression models performance. R package version 0.4-2. https://easystats.github.io/performance

  • Mazibuko N (2019) Does wind dispersal potential constrain plant species range expansion on sub-Antarctic Marion Island. Honours Dissertation. University of Pretoria, Pretoria

    Google Scholar 

  • Momberg M, Hedding DW, Luoto M, le Roux PC (2021) Exposing wind stress as a driver of fine-scale variation in plant communities. J Ecol. https://doi.org/10.1111/1365-2745.13625

    Article  Google Scholar 

  • Mukhadi FL (2011) Phenology of indigenous and alien vascular flowering plants on sub-Antarctic Marion Island. MSc Dissertation. Stellenbosch University, Stellenbosch

    Google Scholar 

  • Munguía-Rosas MA, Sosa VJ (2007) Nurse plants vs. nurse objects: effects of woody plants and rocky cavities on the recruitment of the Pilosocereus leucocephalus columnar cactus. Ann Bot 101:175–185

    Article  PubMed  PubMed Central  Google Scholar 

  • Niknam P, Erfanzadeh R, Ghelichnia H, Cerdà A (2018) Spatial variation of soil seed bank under cushion plants in a subalpine degraded grassland. Land Degrad Dev 29:4–14

    Article  Google Scholar 

  • Nuñez IC, Aizen AM, Ezcurra C (1999) Species associations and nurse plant effects in patches of high-Andean vegetation. J Veg Sci 10:357–364

    Article  Google Scholar 

  • Nyakatya M, McGeoch M (2008) Temperature variation across Marion Island associated with a keystone plant species (Azorella selago Hook. (Apiaceae)). Polar Biol 31:139–151

    Article  Google Scholar 

  • Olofsson J, Moen J, Oksanen L (1999) On the balance between positive and negative plant interactions in harsh environments. Oikos 86:539–543

    Article  Google Scholar 

  • Padilla FM, Pugnaire FI (2006) The role of nurse plants in the restoration of degraded environments. Front Ecol Environ 4:196–202

    Article  Google Scholar 

  • Pammenter N, Drennan PM, Smith V (1986) Physiological and anatomical aspects of photosynthesis of two Agrostis species at a sub-Antarctic island. New Phytol 102:143–160

    Article  CAS  PubMed  Google Scholar 

  • Pearson RG, Dawson TP (2003) Predicting the impacts of climate change on the distribution of species: are bioclimate envelope models useful? Glob Ecol and Biogeogr 12:361–371

    Article  Google Scholar 

  • Pinheiro JC (2014) Linear mixed effects models for longitudinal data. In: Balakrishnan N, Colton T, Everitt B, Piegorsch W, Ruggeri F, Teugels JL (eds) Wiley StatsRef: Statistics Reference Online. Wiley, Hoboken. https://doi.org/10.1002/9781118445112.stat05514

    Chapter  Google Scholar 

  • Raath-Krüger MJ, McGeoch MA, Schöb C, Greve M, le Roux PC (2019) Positive plant–plant interactions expand the upper distributional limits of some vascular plant species. Ecosphere 10:e02820

    Article  Google Scholar 

  • Reichman O (1984) Spatial and temporal variation of seed distributions in Sonoran Desert soils. J Biogeogr 11:1–11

    Article  Google Scholar 

  • Rouault M, Mélice JL, Reason CJ, Lutjeharms JR (2005) Climate variability at Marion Island, Southern Ocean, since 1960. J Geophys Res Oceans 110:C05007

    Article  Google Scholar 

  • RStudio (2018) RStudio: integrated development for R. RStudio, Boston

    Google Scholar 

  • Schöb C et al (2014) The context dependence of beneficiary feedback effects on benefactors in plant facilitation. New Phytol 204:386–396

    Article  PubMed  Google Scholar 

  • Schupp EW (1995) Seed-seedling conflicts, habitat choice, and patterns of plant recruitment. Am J Bot 82:399–409

    Article  Google Scholar 

  • Skaug H, Fournier D, Bolker B, Magnusson A, Nielsen A (2014) glmmADMB: generalized linear mixed models using AD Model Builder. R package version 0.8-0. https://glmmadmb.r-forge.r-project.org

  • Smith V, Steenkamp M (2001) Classification of the terrestrial habitats on Marion Island based on vegetation and soil chemistry. J Veg Sci 12:181–198

    Article  Google Scholar 

  • Soliveres S, DeSoto L, Maestre F, Olano J (2010) Spatio-temporal heterogeneity in abiotic factors modulate multiple ontogenetic shifts between competition and facilitation. Perspect Plant Ecol Evol Syst 12:227–234

    Article  Google Scholar 

  • Valiente-Banuet A, Verdú M (2008) Temporal shifts from facilitation to competition occur between closely related taxa. J Ecol 96:489–494

    Article  Google Scholar 

  • Yang Y, Chen J-G, Schöb C, Sun H (2017) Size-mediated interaction between a cushion species and other non-cushion species at high elevations of the Hengduan Mmountains. SW China Front Plant Sci 8:465

    PubMed  Google Scholar 

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Acknowledgements

We thank Morgan Raath-Krüger, Arend de Beer, Janine Schoombie, Jenna van Berkel and Dineo Mogashoa for assisting with data collection. This research was supported by the National Research Foundation’s South African National Antarctic Programme (Grant No. 110726) and was conducted under a permit from the Prince Edward Islands Management Committee (PEIMC1/2013). We are especially thankful for the thoughtful comments of Jitka Klimešová and two anonymous reviewers for their comments on an earlier version of this manuscript.

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This project was designed by CG, PCL and NSH, and majority of the field work carried was out by CG. The data were analysed by PCL and CG. CG wrote the manuscript, with PCL and NSH providing additional input. All authors read and approved the manuscript.

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Correspondence to Charne A. Gouws.

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Gouws, C.A., Haussmann, N.S. & le Roux, P.C. Seed trapping or a nurse effect? Disentangling the drivers of fine-scale plant species association patterns in a windy environment. Polar Biol 44, 1619–1628 (2021). https://doi.org/10.1007/s00300-021-02898-1

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