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Implications of self/non-self discrimination for spatial patterning of clonal plants

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Abstract

Many clonal plants are characterised by tussock growth forms, but the mechanisms that account for their formation and maintenance are still vague. Here we examine the possible effects of the recently identified phenomenon of self/non-self discrimination on the spatial distribution and patterning of ramets, tussocks and clones in stands of clonal plants. Spatially explicit ramet-based simulation modeling of growth and competition have shown that compact tussocks can be generated as a transient phenomenon that typically disappears at equilibrium. We introduced self/non-self discrimination into a spatial model by decreasing competition between neighbouring ramets on the same clonal fragment. The results demonstrate that self/non-self discrimination can have significant effects on clonal growth and architecture with a clear tendency to generate long-lasting and self-sustaining clumps. Interestingly, this effect was qualitatively independent of other architectural and growth attributes of the plants, making it a candidate mechanism of stable clumped growth forms observed in many clonal plants and communities. Furthermore, the introduction of self/non-self discrimination shifted competition from the level of ramets to that of clonal fragments, which in turns strongly increased genet extinction rates. Our results stress the need for greater attention to the rather neglected scaling up of physiological and morphogenetical controls to the population and community levels.

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References

  • Adachi N, Terashima I, Takahashi M (1996) Mechanisms of central die-back of Reynoutria japonica in the volcanic desert on Mt. Fuji. A stochastic model analysis of rhizome growth. Ann Bot 78:169–179

    Article  Google Scholar 

  • Bascompte J, Solé RV (eds) (1997) Modeling spatiotemporal dynamics in ecology. Springer, Berlin

    Google Scholar 

  • Bolker BM, Pacala SW, Neuhauser C (2003) Spatial dynamics in model plant communities: what do we really know? Am Nat 162:135–148

    Article  PubMed  Google Scholar 

  • Cain ML (1990) Models of clonal growth in Solidago altissima. J Ecol 78:27–46

    Article  Google Scholar 

  • Callaway RM, Walker R (1997) Competition and facilitation: a synthetic approach to interactions in plant communities. Ecology 78:1958–1965

    Google Scholar 

  • Callaway RM, Brooker RW, Choler P, Kikvidze Z, Lortie CJ, Michalet R, Paolini L, Pugnaire FI, Newingham B, Aschehoug ET, Armas C, Kikodze D, Cook BJ (2002) Positive interactions among alpine plants increase with stress. Nature 417:844–848

    Article  PubMed  CAS  Google Scholar 

  • Chadwick MJ (1960) Nardus stricta L. J Ecol 48:255–267

    Article  Google Scholar 

  • Choler P, Michalet R, Callaway RM (2001) Facilitation and competition on gradients in alpine plant communities. Ecology 82:3295–3308

    Google Scholar 

  • Cowie NR, Watkinson AR, Sutherland WJ (1995) Modelling the growth dynamics of the clonal herb Anemone nemorosa L. in an ancient coppice wood. Abstr Bot (Budapest) 19:35–49

    Google Scholar 

  • Ellner S, Shmida A (1981) Why are adaptations for long-range seed dispersal rare in desert plants. Oecologia 51:133–144

    Article  Google Scholar 

  • Falik O, Reides P, Gersani M, Novoplansky A (2003) Self/non-self discrimination in roots. J Ecol 91:525–531

    Article  Google Scholar 

  • Gersani M, Brown JS, O'Brien EE, Maina GM, Abramsky Z (2001) Tragedy of the commons as a result of root competition. J Ecol 89:660–669

    Article  Google Scholar 

  • Gilad E, von Hardenberg J, Provenzale A, Shachak M, Meron ME (2004) Ecosystem engineers: from pattern formation to habitat creation. Phys Rev Lett 93:98–105

    Article  CAS  Google Scholar 

  • Greig-Smith P, Gemmell AR, Gimingham CH (1947) Tussock formation in Ammophila arenaria (L.) Link. New Phytol 46:262–268

    Article  Google Scholar 

  • Greig-Smith P (1964) Quantitative Plant Ecology. 2nd Ed. Butterworths Sci. Publs, London

    Google Scholar 

  • Gruntman M, Novoplansky A (2004) Physiologically mediated self/non-self discrimination in roots. Proc Nat Acad Sci USA 101:3863–3867

    Article  PubMed  CAS  Google Scholar 

  • Gustafsson C, Ehrlén J (2003) Effects of intraspecific and interspecific density on the demography of a perennial herb, Sanicula europaea. Oikos 100:317–324

    Article  Google Scholar 

  • Herben T (2004) Physiological integration affects growth form and competitive ability in clonal plants. Evol Ecol 18:493–520

    Article  Google Scholar 

  • Herben T, Hara T (2003) Spatial pattern formation in plant communities. In: Sekimura T, Noji S, Ueno N, Maini PK (eds) Morphogenesis and pattern formation in biological systems–experiments and models. Springer Verlag, Berlin, pp 223–235

    Google Scholar 

  • Herben T, Suzuki J (2001) A simulation study of the effects of architectural constraints and resource translocation on population structure and competition in clonal plants. Evol Ecol 15:403–423

    Article  Google Scholar 

  • Holzapfel C, Alpert P (2003) Root cooperation in a clonal plant: connected strawberries segregate roots. Oecologia 134:72–77

    Article  PubMed  Google Scholar 

  • Jones CG, Lawton JH, Shachak M (1997) Positive and negative effects of organisms as physical ecosystem engineers. Ecology 78:1946–1957

    Article  Google Scholar 

  • Jónsdóttir IS, Augner M, Fagerström T, Persson H, Stenstrom A (2000) Genet age in marginal populations of two clonal Carex species in the Siberian Arctic. Ecography 23:402–412

    Article  Google Scholar 

  • Kikvidze Z, Pugnaire I, Brooker RW, Choler P, Lortie CJ, Michalet R, Callaway RM (2005) Linking patterns and processes in alpine plant communities: a global study. Ecology 86:1395–1400

    Article  Google Scholar 

  • Kudoh H, Shibaike H, Takasu H, Whigham DF, Kawano S (1999) Genet structure and determinants of clonal structure in a temperate deciduous woodland herb, Uvularia perfoliata. J Ecol 87:244–257

    Article  Google Scholar 

  • Law R, Murrell DJ, Dieckmann U (2003) Population growth in space and time: Spatial logistic equations. Ecology 84(1):252–262

    Article  Google Scholar 

  • Maestre FT, Valladares F, Reynolds J (2005) Is the change of plant-plant interactions with abiotic stress predictable? A meta-analysis of field results in arid environments. J Ecol 93:748–757

    Article  Google Scholar 

  • Namroud MC, Park A, Tremblay F, Bergeron Y (2005) Clonal and spatial genetic structures of aspen (Populus tremuloides Michx.). Mol Ecol 14:2969–2980

    Article  PubMed  CAS  Google Scholar 

  • Novoplansky A, Cohen D, Sachs T (1990) How Portulaca seedlings avoid their neighbours. Oecologia (Berlin) 82:490–493

    Article  Google Scholar 

  • Piqueras J, Klimeš L (1998) Demography and modelling of clonal fragments in the pseudoannual plant Trientalis europaea L. Plant Ecol 136:213–227

    Article  Google Scholar 

  • Rietkerk M, Boerlijst MC, van Langevelde F, HilleRisLambers R, van de Koppel J, Kumar L, Prins HHT, de Roos AM (2002) Self-organization of vegetation in arid ecosystems. Am Nat 160:524–530

    Article  PubMed  Google Scholar 

  • Silvertown J, Holtier S, Johnson J, Dale P (1992) Cellular automaton models of interspecific competition for space - the effect of pattern on process. J Ecol 80:527–534

    Article  Google Scholar 

  • Suzuki J, Herben T, Krahulec F, Štorchová H, Hara T (2006) Effects of neighbourhood structure and tussock dynamics on genet demography of Festuca rubra in a mountain meadow. J Ecol 94:66–76

    Article  Google Scholar 

  • Wikberg S, Svensson BM (2003) Ramet demography in a ring-forming clonal sedge. J Ecol 91:847–854

    Article  Google Scholar 

  • Wildová R, Gough L Herben T, Hershock C, Goldberg DE (2007) Architectural and growth traits differ in effects on performance of clonal plants: an analysis using a field-parameterized simulation model. Oikos 116:836–852

    Article  Google Scholar 

  • Wilhalm T (1995) A comparative study of clonal fragmentation in tussock-forming grasses. Abstr Bot (Budapest) 19:51–60

    Google Scholar 

  • Yizhaq H, Gilad E, Meron E (2005) Banded vegetation: biological productivity and resilience. Physica A Statist Mech Appl 356:139–144

    Article  Google Scholar 

  • Yu FH, Schneller JJ, Krusi B, Schutz M, Tang M, Wildi O (2006) Genetic variability within Carex sempervirens tussocks of contrasting vitality. Int J Plant Sci 167:513–518

    Article  CAS  Google Scholar 

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Acknowledgements

We thank Jan Wild for drawing maps of spacer structures. The research was supported in part by the GA ČR grants 206/06/0098, 0021620828 and AV0Z60050516 to T.H. and by a research grasnt from the Israel Science Foundation to A.N. This is publication no. 581 of the Mitrani Department of Desert Ecology.

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Correspondence to Tomáš Herben.

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Herben, T., Novoplansky, A. Implications of self/non-self discrimination for spatial patterning of clonal plants. Evol Ecol 22, 337–350 (2008). https://doi.org/10.1007/s10682-007-9214-4

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