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Fragmentation of clones: how does it influence dispersal and competitive ability?

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Abstract

We applied individual-based simulations to study the effect of physiological integration among ramets in clonal species that live in patchy habitats. Three strategies were compared: (1) Splitter, in which the genet was fragmented into independent ramets; (2) Transient Integrator, where only groups of ramets were connected; and (3) Permanent Integrator, in which fragmentation did not occur, and the whole genet was integrated. We studied the dynamics of spatial spreading and population growth in these strategies separately and in competition. Various habitat types were modeled by changing the density of favorable habitat patches. We found that the spatial pattern of good patches significantly influenced the growth of the populations. When the resource patches were scarce, a large proportion of the carrying capacity of the habitat was not utilized by any of the strategies. It was the Splitter that proved to be the most severely dispersal-limited. But at the same time, it could compete for the good patches most efficiently. The balance between these two contradictory effects was largely determined by the proportion of favorable to unfavorable areas. When this proportion was low or intermediate (up to ca. 50% good), integration was more advantageous. At higher proportions, fragmentation became beneficial. Fragmentation into groups of ramets (Transient Integration) was not sufficient, only radical splitting could ensure a significant selective advantage. Transient Integrators got fragmented according to the spatial pattern of ramet mortality. It was interesting that the enrichment of the area in good sites did not lead to larger fragment sizes. It merely raised the number of fragments. Nevertheless, these small fragments were more similar to integrated genets (in the Permanent Integrator) than to solitary ramets (in the Splitter) in terms of dispersal and competitive ability. This suggests that even a slightly integrated clonal species can be ecologically considered as an integrator.

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References

  • Alpert, P. (1991) Nitrogen sharing among ramets increases clonal growth in Fragaria chiloensis. Ecology 72 (1), 69–80.

    Article  Google Scholar 

  • Alpert, P. (1996a) Does clonal growth increase plant performance in natural communities? In B. Oborny and J. Podani, (eds) Clonality in Plant Communities. Opulus Press, Uppsala, pp. 11–16.

    Google Scholar 

  • Alpert, P. (1996b) Nitrogen sharing in natural clonal fragments of Fragaria chiloensis. Ecology 84 395–406.

    Google Scholar 

  • Alpert, P. (1999) Clonal integration in Fragaria chiloensis differs between populations: ramets from grassland are selfish. Oecologia 120, 69–76.

    Article  Google Scholar 

  • Birch, C.P.D. and Hutchings, M.J. (1994) Exploitation of patchily distributed soil resources by the clonal herb Glechoma hederacea. J. Ecol. 82, 653–664.

    Article  Google Scholar 

  • Birch, C.P.D. and Hutchings, M.J. (1999) Clonal segmantation. The development of physiological independence within stolons of Glechoma hederacea L. (Lamiaceae). Plant Ecol. 141, 21 31.

    Google Scholar 

  • Cain, M.L. (1990) Models of clonal growth in Solidago altissima. J. Ecol. 78, 27–46.

    Article  Google Scholar 

  • Cain, M.L. and Damman, H. (1997) Clonal growth and ramet performance in the woodland herb, Asarum canadense. J. Ecol. 85, 883–897.

    Article  Google Scholar 

  • Caldwell, M.M. and Pearcy, R.W. (eds) (1994) Exploitation of Environmental Heterogeneity by Plants. Academic Press, Inc., San Diego.

    Google Scholar 

  • Cook, R.E. (1985) Growth and development in clonal plant populations. In J.B.C. Jackson et al.,(eds) Population Biology and Evolution of Clonal Organisms. Yale University Press, New Haven, Connecticut, USA, pp. 259–296.

    Google Scholar 

  • Crawley, M.J. and May, R.M. (1987) Population dynamics and plant community structure: competition between annuals and perennials. J. Theoret. Biol. 125, 475–489.

    Article  Google Scholar 

  • Czdrân, T. (1998) Spatiotemporal Models of Population and Community Dynamics. Chapman and Hall, New York.

    Google Scholar 

  • de Kroon, H. and Hutchings, M.J. (1995) Morphological plasticity in clonal plants: the foraging concept reconsidered. J. Ecol. 83, 143–152.

    Article  Google Scholar 

  • Eriksson, O. and Jerling, L. (1990) Hierarchical selection and risk spreading in clonal plants. In J. van Groenendael and H. de Kroon, (eds), Clonal Growth in Plants: Regulation and Function. SPB Academic Publisher, The Hague, pp. 79–94.

    Google Scholar 

  • Gardner, S.N. and Mangel, M. (1997) When can a clonal organism escape senescence? Am. Nat. 150 (4), 462–490.

    Article  PubMed  CAS  Google Scholar 

  • Gardner, R.H., Milne, B.T., Turner, M.G. and O’Neill, R.V. (1987) Neutral models for the analysis of broad-scale landscape pattern. Landscape Ecol. 1 (1), 19–28.

    Article  Google Scholar 

  • Harper, J.L. and Bell, A.D. (1979) The population dynamics of growth form in organisms with modular construction. In R.M. Anderson et al.,(ed) Population Dynamics. Blackwell Scientific Publisher, Oxford, pp. 29–52.

    Google Scholar 

  • Harrison, S. and Bruna, E. (1999) Habitat fragmentation and large-scale conservation: what do we know for sure? Ecography 22, 225–232.

    Article  Google Scholar 

  • Headley, D.C. et al. (1988) Phosphate and nitrate movement in the clonal plants Lycopodium annotinum L and Diphasiastrum complanatum (L) Holub. New Phytol. 110, 497–502.

    Article  Google Scholar 

  • Hughes, B.D. (1996) Random Walks and Random Environments. Clarendon Press, Oxford.

    Google Scholar 

  • Hutchings, M.J. and Bradbury, I.K. (1986) Ecological perspectives on clonal perennial herbs. BioScience 36 (3), 178–182.

    Article  Google Scholar 

  • Hutchings, M.J. and de Kroon, H. (1994) Foraging in plants: the role of morphological plasticity in resource acquisition. Ad. Ecol. Res. 25, 159–238.

    Article  Google Scholar 

  • Hutchings, M.J. and Wijesinghe, D.K. (1997) Patchy habitats, division of labour and growth dividends in clonal plants. Tr. Evol. Ecol. 12 (10), 390–394.

    Article  CAS  Google Scholar 

  • Jackson, J.B.C. et al. (eds) (1985) Population Biology and Evolution of Clonal Organisms. Yale University Press, New Haven, Connecticut. USA.

    Google Scholar 

  • Jónsdóttir, B.M. and Callaghan, T.V. (1988) Interrelationships between different generations of interconnected tillers of Carex higelouii. Oikos 52, 120–128.

    Article  Google Scholar 

  • Jónsdóttir, B.M. and Watson, M.A. (1997) Extensive physiological integration: an adaptive trait in resource-poor environments? In H. de Kroon and J. van Groenendael, (eds) The Evolution and Ecology of Clonal Plants. Backhuys Publishers, Leiden, pp. 109–136.

    Google Scholar 

  • Kelly, C.K. (1995) Thoughts on clonal integration: facing the evolutionary context. Evol. Ecol. 9, 575–585.

    Article  Google Scholar 

  • Klekowski, E.J. (1997) Somatic mutation theory of clonality. In H. de Kroon and J. van Groenendael (eds) The Ecology and Evolution of Clonal Plants. Backhuys Pubisher, Leiden, The Netherlands, pp. 227–241.

    Google Scholar 

  • Klimes, L. et al. (1997) Clonal plant architecture: a comparative analysis of form and function. In H. de Kroon and J. van Groenendael (eds) The Evolution and Ecology of Clonal Plants. Backhuys Publishers, Leiden, pp. 1–30.

    Google Scholar 

  • Marshall, C. and Price, E.A.C. (1997) Sectoriality and its implications for physiological integration. In H. de Kroon and J. van Groenendael (eds) The Evolution and Ecology of Clonal Plants. Backhuys Publishers, Leiden, pp. 79–107.

    Google Scholar 

  • Marshall, C. and Price, E.A.C. (eds) (1999) Clonal Plants and Environmental Heterogeneity-Space, Time and Scale. `Plant Ecol.’ (special issue) 141, 1–199.

    Google Scholar 

  • McIntyre, N.E. and Wiens, J. (1999) Interactions between habitat abundance and configuration: experimental validation of some predictions from percolation theory. Oikos 86, 129–137.

    Article  Google Scholar 

  • Oborny, B. et al. (2000) The effect of clonal integration on plant competition for mosaic habitat space. Ecology 81 (12), 3291–3304.

    Article  Google Scholar 

  • Oborny, B. and Cain, M.L. (1997) Models of spatial spread and foraging in clonal plants. In H. de Kroon and J. van Groenendael (eds) The Ecology and Evolution of Clonal Plants. Backhuys Publisher, Leiden, The Netherlands, pp. 115–127.

    Google Scholar 

  • Oborny, B., Czârân, T. and Adam, K. (2001) Exploration and exploitation of resource patches by clonal growth: a spatial model on the effect of transport between modules. Ecol. Modelling 141, 151–169.

    Article  Google Scholar 

  • Piqueras, J. et al. (1999) Modelling the morphological response to nutrient availability in the clonal plant Trientalis europaea L. Plant Ecol. 141, 117–127.

    Article  Google Scholar 

  • Pitelka, L.F. and Ashmun, J.W. (1985) Physiology and integration of ramets in clonal plants. In J.B.C. Jackson et al. (eds) Population Biology and Evolution of Clonal Organisms. Yale University Press, New Haven, Connecticut, USA, pp. 399–435.

    Google Scholar 

  • Schmid, B. (1990) Some ecological and evolutionary consequences of modular organization and clonal growth in plants. Evol. Tr. Plants 4 (1), 25–34.

    Google Scholar 

  • Schmid, B. and Bazzaz, F.A. (1987) Clonal integration and population structure in perennials: effects of severing rhizome connections. Ecology 68, 2016–2022.

    Article  Google Scholar 

  • Schmid, B. and Bazzaz, F.A. (1991) Growth of transplanted and native shoots in perennials with contrasting genet architecture. Flora 185, 335–344.

    Google Scholar 

  • Sebens, K.P. and Thorne, B.L. (1985) Coexistence of clones, clonal diversity, and the effects of disturbance. In. J.B.C. Jackson et al. (eds) Population Biology and Evolution of Clonal Organisms. Yale University Press, New Haven, Connecticut, pp. 357–397.

    Google Scholar 

  • Stauffer, D. (1985) Introduction to Percolation Theory. Taylor and Francis Ltd., London.

    Google Scholar 

  • Stuefer, J.F. (1996) Potential and limitations of current concepts regarding the responses of clonal plants to environmental heterogeneity. Vegetatio 127, 55–70.

    Article  Google Scholar 

  • Stuefer, J.F. et al. (1994) High benefits of clonal integration in two stoloniferous species, in response to heterogeneous light environments. J. Ecol. 82 511–518.

    Google Scholar 

  • Stuefer, J.F. et al. (1996) Exploitation of environmental heterogeneity by spatial division of labour in a clonal plant. Funct. Ecol. 10 328–334.

    Google Scholar 

  • Sutherland, W.J. (1990) The response of plants to patchy environments. In B. Shorrocks and I.R. Swingland (eds) Living in a Patchy Environment. Oxford Science Publications, Oxford.

    Google Scholar 

  • Turner, M.G. and Gardner, R.H. (eds) (1990) Quantitative Methods in Landscape Ecology. The Analysis and Interpretation of Landscape Heterogeneity. Springer Verlag, Berlin.

    Google Scholar 

  • van Groenendael, J. and de Kroon, H. (eds) (1990) Clonal Growth in Plants: Regulation and Function. SPB Academic Publisher, The Hague.

    Google Scholar 

  • van Kleunen, M. et al. (2000) Clonal integration in Ranunculus reptans: by-product or adaptation? J. Evol. Biol. 13, 237–248.

    Google Scholar 

  • Watson, M.A. (1986) Integrated physiological units in plants. Tr. Evol. Ecol. 1(5), 119–123. Wijesinghe, D.K. (1994) Temporal and structural components of ramet independence in the clonal perennial herb, Potentilla simplex. J. Ecol. 82, 13–20.

    Google Scholar 

  • Wijesinghe, D.K. and Handel, S.N. (1994) Advantages of clonal growth in heterogeneous habitats: an experiment with Potentilla simplex. J. Ecol. 82, 495–502.

    Article  Google Scholar 

  • Wijesinghe, D.K. and Hutchings, M.J. (1997) The effects of spatial scale of environmental heterogeneity on the growth of a clonal plant: an experimental study with Glechoma hederacea. J. Ecol. 85, 17–28.

    Article  Google Scholar 

  • Wilhalm, T. (1996) A comparative study of clonal fragmentation in tussock-forming grasses. In B. Oborny and J. Podani (eds) Clonality in Plant Communities. Opulus Press, Uppsala, pp. 51–60.

    Google Scholar 

  • With, K. and Crist, T.O. (1995) Critical thresholds in species responses to landscape structure. Ecology 76 (8), 2446–2459.

    Article  Google Scholar 

  • Yodzis, P. (1978) Competition for Space and the Structure of Ecological Communities. Springer, Berlin.

    Book  Google Scholar 

  • Zallen, R. (1983) Percolation: a model for all seasons. In R. Weil (ed.) Percolation Structures and Processes. Ayalon Offset Ltd., Haifa, pp. 3–16.

    Google Scholar 

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Correspondence to Beáta Oborny .

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Oborny, B., Kun, Á. (2002). Fragmentation of clones: how does it influence dispersal and competitive ability?. In: Stuefer, J.F., Erschbamer, B., Huber, H., Suzuki, JI. (eds) Ecology and Evolutionary Biology of Clonal Plants. Springer, Dordrecht. https://doi.org/10.1007/978-94-017-1345-0_6

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  • DOI: https://doi.org/10.1007/978-94-017-1345-0_6

  • Publisher Name: Springer, Dordrecht

  • Print ISBN: 978-90-481-6047-1

  • Online ISBN: 978-94-017-1345-0

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