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The impacts of pollination mode, plant characteristics and local density on the reproductive success of a scarce plant species, Salix arbuscula

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Abstract

Pollination failure represents one stage at which sexual reproduction of plants may be limited. It is therefore important to understand the pollination mechanism of the plant and how this may be affected by plant and population characteristics. This study examined the reproductive biology of a scarce montane willow species, Salix arbuscula, as part of a programme to determine ecological strategies for the conservation of montane willow scrub, an endangered habitat in the UK. The relative importance of insect and wind pollination, and the role of plant characteristics including plant size, catkin length, number of flowers and local density in determining reproductive success (number of fruit set) were investigated in three populations. Insect exclosures were used to determine the pollination mechanism. Our results suggest that S. arbuscula is predominantly insect-pollinated. In naturally pollinated plants, catkins with a higher proportion of ripe fruit were longer. Plants with more than two males in the local area and unbrowsed plants had a higher proportion of ripe fruit per catkin. The extent of wind pollination was very low, but differed between populations. The success of wind-only pollination was dependent on the number of males nearby, indicating that local density is more important in this type of pollination. Pollination mechanism and fruit set varied between the three populations observed, demonstrating the importance of multi-site comparisons. The number of males in the surrounding area had a positive effect on fruit set in both types of pollination, suggesting that Allee effects are likely to be operating in this species.

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References

  • Allison TD (1990a) The influence of deer browsing on the reproductive biology of Canada Yew (Taxus canadensis Marsh.) II. Pollen limitation: an indirect effect. Oecologia 83:530–534

    Article  Google Scholar 

  • Allison TD (1990b) Pollen production and plant density affect pollination and seed production in Taxus canadensis. Ecology 71:516–522

    Article  Google Scholar 

  • Argus GW (1974) An experimental study of hybridization and pollination in Salix (Willows). Can J Bot 52:1613–1619

    Article  Google Scholar 

  • Bosch M, Waser NM (1999) Effects of local density on pollination and reproduction in Delphinium nuttallianum and Aconitum columbianum (Ranunculaceae). Am J Bot 86:871–879

    Article  PubMed  Google Scholar 

  • Bosch M, Waser NM (2001) Experimental manipulation of plant density and its effect on pollination and reproduction of two confamilial montane herbs. Oecologia 126:76–83

    Article  Google Scholar 

  • Conner JK, Rush S (1996) Effects of flower size and number on pollinator visitation to wild radish Raphanus raphanistrum. Oecologia 105:509–516

    Article  Google Scholar 

  • Douglas DA (1997) Pollination, capsule damage, and the production of seeds in Salix setchelliana (Salicaceae), an Alaskan glacial river gravel bar willow. Can J Bot 75:1182–1187

    Article  Google Scholar 

  • Elston DA (1998) Estimates of denominator degrees of freedom of F-distributions for assessing Wald statistics for fixed-effect factors in unbalanced mixed models. Biometrics 54:1085–1096

    Article  Google Scholar 

  • Feil JP (1992) Reproductive ecology of dioecious Siparuna (Monimiaceae) in Ecuador—a case of gall midge pollination. Bot J Linn Soc 110:171–203

    Article  Google Scholar 

  • Fox JF (1992) Pollen limitation of reproductive effort in willows. Oecologia 90:283–287

    Google Scholar 

  • Fritz AL, Nilsson LA (1994) How pollinator-mediated mating varies with population size in plants. Oecologia 100:451–462

    Article  Google Scholar 

  • Goodwillie C (1999) Wind pollination and reproductive assurance in Linanthus parviflorus (Polemoniaceae), a self-incompatible annual. Am J Bot 86:948–954

    Article  PubMed  Google Scholar 

  • Grace J, Nelson M (1981) Insects and their pollen loads at a hybrid Heracleum site. New Phytol 87:413–423

    Article  Google Scholar 

  • Groom MJ (1998) Allee effects limit population viability of an annual plant. Am Nat 151:487–496

    Article  CAS  PubMed  Google Scholar 

  • Kearns CA, Oliveras DM (2009) Environmental factors affecting bee diversity in urban and remote grassland plots in Boulder, Colorado. J Insect Conserv 13:655–665

    Article  Google Scholar 

  • Kendall DA, Solomon ME (1972) Quantities of pollen on the bodies of insects visiting apple blossom. J Appl Ecol 9:609–615

    Article  Google Scholar 

  • Kudoh H, Whigham DF (1998) The effect of petal size manipulation on pollinator/seed-predator mediated female reproductive success of Hibiscus moscheutos. Oecologia 117:70–79

    Article  Google Scholar 

  • Kunin WE (1997) Population size and density effects in pollination: pollinator foraging and plant reproductive success in experimental arrays of Brassica kaber. J Ecol 85:225–234

    Article  Google Scholar 

  • Mardon DK (1990) Conservation of montane willow scrub in Scotland. Trans Bot Soc Edinb 45:427–436

    Google Scholar 

  • McCall C, Primack RB (1992) Influence of flower characteristics, weather, time of day and season on insect visitation rates in three plant communities. Am J Bot 79:434–442

    Article  Google Scholar 

  • Meikle RD (1984) Willows and poplars of Great Britain and Ireland. Botanical Society of the British Isles, London

    Google Scholar 

  • Peeters L, Totland O (1999) Wind to insect pollination ratios and floral traits in five alpine Salix species. Can J Bot 77:556–563

    Article  Google Scholar 

  • Rathcke B (1983) Competition and facilitation among plants for pollination. In: Real L (ed) Pollination biology. Academic Press, Orlando, pp 305–329

    Google Scholar 

  • Sacchi CF, Price PW (1988) Pollination of the arroyo willow, Salix lasiolepis: role of insects and wind. Am J Bot 75:1387–1393

    Article  Google Scholar 

  • Schmitt J (1980) Pollinator foraging behaviour and gene dispersal in Senecio (Compositae). Evolution 34:934–943

    Article  Google Scholar 

  • Shaw RF (2006) Plant-herbivore interactions in montane willow communities. PhD thesis. University of Aberdeen, Aberdeen

  • Sih A, Baltus MS (1987) Patch size, pollinator behavior, and pollinator limitation in catnip. Ecology 68:1579–1690

    Article  Google Scholar 

  • Steven JC, Waller DM (2007) Isolation affects reproductive success in low-density but not high-density populations of two wind-pollinated Thalictrum species. Plant Ecol 190:131–141

    Article  Google Scholar 

  • Stewart A, Pearman D, Preston CD (1994) Scarce plants in Britain. Joint Nature Conservation Committee, Peterborough

  • Sullivan G (2002) Propagation of scrub species. In: Gilbert D (ed) Guidance for the restoration of montane scrub. Highland Birchwoods, Munlochy, pp 29–35

    Google Scholar 

  • Tamura S, Kudo G (2000) Wind pollination and insect pollination of two temperate willow species, Salix miyabeana and Salix sachalinensis. Plant Ecol 147:185–192

    Article  Google Scholar 

  • Totland O (1994) Influence of climate, time of day and season, and flower density on insect flower visitation in alpine Norway. Arct Alp Res 26:66–71

    Article  Google Scholar 

  • Totland O, Sottocornola M (2001) Pollen limitation of reproductive success in two sympatric alpine willows (Salicaceae) with contrasting pollination strategies. Am J Bot 88:1011–1015

    Article  Google Scholar 

  • Waser NM (1982) Comparison of distances flown by different visitors to flowers of the same species. Oecologia 55:251–257

    Article  Google Scholar 

  • Wilcock CC, Neiland MRM (2002) Pollination failure in plants: why it happens and when it matters. Trends Plant Sci 7:270–277

    Article  CAS  PubMed  Google Scholar 

Download references

Acknowledgements

The National Trust to Scotland, John Angus McLeod and the Cashlie Estate kindly allowed site access and gave permission to set up experimental treatments. Thanks to David Mardon and Chris Wilcock for discussion on the proposed work and to Colin Legg, Sarah Woodin, Nick Littlewood and two anonymous referees for critical comments. Thanks also to Dave Sim and Simon Shaw for help with the fieldwork. This study was funded by the Scottish Government’s Rural and Environment Research and Analysis Directorate.

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Correspondence to Rosalind F. Shaw.

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Shaw, R.F., Elston, D.A., Pakeman, R.J. et al. The impacts of pollination mode, plant characteristics and local density on the reproductive success of a scarce plant species, Salix arbuscula . Plant Ecol 211, 367–377 (2010). https://doi.org/10.1007/s11258-010-9795-9

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  • DOI: https://doi.org/10.1007/s11258-010-9795-9

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