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Integrating measurements of seed availability and removal to estimate weed seed losses due to predation

Published online by Cambridge University Press:  20 January 2017

Matt Liebman
Affiliation:
Department of Agronomy, 3405 Agronomy Hall, Iowa State University, Ames, IA, 50011-1010
Andrew H. Heggenstaller
Affiliation:
Department of Agronomy, 3403 Agronomy Hall, Iowa State University, Ames, IA, 50011-1010
Frank Forcella
Affiliation:
North Central Soil Conservation Research Laboratory, USDA-Agricultural Research Service, Morris, MN, 56267

Abstract

To better understand seed predation and enhance weed seed losses in arable fields, we developed a conceptual model that integrates seed dispersal, seed burial, and seed demand, the three processes that determine the dynamics of summer annual weed seeds on the soil surface in late summer and autumn. Published and unpublished experimental data were used to parameterize a simulation model for a number of crop–weed combinations. Sensitivity analyses of models for giant foxtail in corn and soybean indicated that factors related to seed availability were more important in determining overall seed losses due to predation than those related to seed demand. Delaying harvest date and destroying unshed weed seeds collected at harvest emerged as promising strategies to reduce seed input into the seed bank. The role of plant debris in hiding weed seeds from predators was ambiguous and requires further investigation. Estimates of overall seed losses due to predation based on model simulations in various crops and cropping systems indicated that weed seed predation could serve as an important tool in ecological weed management.

Type
Symposium
Copyright
Copyright © Weed Science Society of America 

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References

Literature Cited

Andersson, L. 1998. Post-dispersal seed removal in some agricultural weeds. Asp. Appl. Biol 51:159164.Google Scholar
Ballaré, C. L., Scopel, A. L., Ghersa, C. M., and Sanchez, R. A. 1987. The demography of Datura ferox (L.) in soybean crops. Weed Res 27:91102.CrossRefGoogle Scholar
Brust, G. E. and House, G. J. 1988. Weed seed destruction by arthropods and rodents in low-input soybean agroecosystems. Am. J. Altern. Agric 3:1925.CrossRefGoogle Scholar
Cardina, J. and Norquay, H. M. 1997. Seed production and seedbank dynamics in subthreshold velvetleaf (Abutilon theophrasti) populations. Weed Sci 45:8590.CrossRefGoogle Scholar
Cardina, J., Norquay, H. M., Stinner, B. J., and McCartney, D. A. 1996. Postdispersal predation of velvetleaf (Abutilon theophrasti) seeds. Weed Sci 44:534539.Google Scholar
Chambers, J. C. and MacMahon, J. A. 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 25:263292.Google Scholar
Cousens, R. and Moss, R. 1990. A model of the effects of cultivation on the vertical distribution of weed seeds within the soil. Weed Res 30:6170.CrossRefGoogle Scholar
Crawley, M. J. 1992. Seed predators and plant population dynamics. Pages 157191 in Fenner, M. ed. Seeds: the Ecology of Regeneration in Plant Communities. Wallingford, Oxon, U.K.: CAB International.Google Scholar
Cromar, H. E., Murphy, S. D., and Swanton, C. J. 1999. Influence of tillage and crop residue on postdispersal predation of weed seeds. Weed Sci 47:184194.CrossRefGoogle Scholar
Davis, A. S. and Liebman, M. 2003. Cropping system effects on giant foxtail (Setaria faberi) demography. I. green manure and tillage timing. Weed Sci 51:919929.Google Scholar
Davis, A. S., Dixon, P. M., and Liebman, M. 2003. Cropping system effects on giant foxtail demography, II: retrospective perturbation analysis. Weed Sci 51:930939.Google Scholar
Forcella, F., Peterson, D. H., and Barbour, J. C. 1996. Timing and measurement of weed seed shed in corn (Zea mays). Weed Technol 10:535543.CrossRefGoogle Scholar
Gerowitt, B. and Bodendorfer, H. 1998. Long-term population development of Viola arvensis Murr. in a crop rotation, 1: field experiments. J. Plant Dis. Prot 105:641654.Google Scholar
González-Andujar, J. L. and Fernandez-Quintanilla, C. 1991. Modelling the population dynamics of Avena sterilis under dry-land cereal cropping systems. J. Appl. Ecol 28:1627.Google Scholar
Harrison, S. K., Regnier, E. E., and Schmoll, J. T. 2003. Postdispersal predation of giant ragweed (Ambrosia trifida) seed in no-tillage corn. Weed Sci 51:955964.CrossRefGoogle Scholar
Heggenstaller, A. H. and Liebman, M. 2006. Demography of Abutilon theophrasti and Setaria faberi in three crop rotation systems. Weed Res 46:138151.Google Scholar
Hulme, P. E. 1994. Post-dispersal seed predation in grassland: its magnitude and sources of variation. J. Ecol 82:645652.CrossRefGoogle Scholar
Jordan, N., Mortensen, D. A., Prenzlow, D. M., and Cox, K. C. 1995. Simulation analysis of crop rotation effects on weed seedbanks. Am. J. Bot 82:390398.Google Scholar
Kjellsson, G. 1985. Seed fate in a population of Carex pilulifera L., II: seed predation and its consequences for dispersal and seed bank. Oecologia 67:424429.CrossRefGoogle Scholar
Leighty, C. E. 1938. Crop rotation. Pages 406430 in Soils and Men: Yearbook of Agriculture 1938. Washington, D.C.: U.S. Department of Agriculture, Government Printing Office.Google Scholar
Liebman, M. and Gallandt, E. R. 1997. Many little hammers: ecological management of crop–weed interactions. Pages 291343 in Jackson, L. E. ed. Ecology in Agriculture. San Diego: Academic.CrossRefGoogle Scholar
Liebman, M. and Staver, C. P. 2001. Crop diversification for weed management. Pages 322374 in Liebman, M., Mohler, C. L., and Staver, C. P. eds. Ecological Management of Agricultural Weeds. Cambridge, U.K.: Cambridge University Press.CrossRefGoogle Scholar
Marino, P. C., Gross, K. L., and Landis, D. A. 1997. Weed seed loss due to predation in Michigan maize fields. Agric. Ecosyst. Environ 66:189196.CrossRefGoogle Scholar
Marino, P. C., Westerman, P. R., Pinkert, C., and van der Werf, W. 2005. Influence of seed density and aggregation on post-dispersal weed seed predation in cereal fields. Agric. Ecosyst. Environ 106:1725.CrossRefGoogle Scholar
Mauchline, A. L., Watson, S. J., Brown, V. K., and Froud-Williams, R. J. 2005. Post-dispersal seed predation of non-target weeds in arable crops. Weed Res 45:157164.Google Scholar
Menalled, F. D., Liebman, M., and Renner, K. A. in press. The ecology of weed seed predation in herbaceous crop systems. in Batish, D. R., ed. Handbook of Sustainable Weed Management. New York: Haworth.Google Scholar
Menalled, F. D., Marino, P. C., Renner, K. A., and Landis, D. A. 2000. Post-dispersal weed seed predation in Michigan crop fields as a function of agricultural landscape structure. Agric. Ecosyst. Environ 77:193202.CrossRefGoogle Scholar
Mittelbach, G. G. and Gross, K. L. 1984. Experimental studies of seed predation in old-fields. Oecologia 65:713.CrossRefGoogle ScholarPubMed
Recasens, J., Calvet, V., Cirujeda, A., and Conesa, J. A. 2005. Phenological and demographic behaviour of an exotic invasive weed in agroecosystems. Biol. Invasions 7:1727.CrossRefGoogle Scholar
Seguer Millàs, J. 2002. Influence of weather conditions and seed features on the burial rate of weed seeds on the soil surface. . Wageningen University, Wageningen, The Netherlands. 79 p.Google Scholar
Slagell Gossen, R. R., Tyrl, R. J., Hauhouot, M., Peeper, T. F., Claypool, P. L., and Solie, J. B. 1998. Effects of mechanical damage on cheat (Bromus secalinus) caryopsis anatomy and germination. Weed Sci 46:249257.Google Scholar
Thompson, K. 1987. Seeds and seed banks. New Phytol 105:2334.CrossRefGoogle Scholar
Tooley, J. A., Froud-Williams, R. J., Boatman, N. D., and Holland, J. M. 1999. Weed seed predation in arable field margins by carabid beetles (Carabidae: Coleoptera). Asp. Appl. Biol 54:211216.Google Scholar
Vander Wall, S. B., Kuhn, K. M., and Beck, M. J. 2005. Seed removal, seed predation and secondary dispersal. Ecology 86:801806.CrossRefGoogle Scholar
Watson, S. J., Mauchline, A. L., Brown, V. K., and Froud-Williams, R. J. 2003. Post-dispersal losses of Stellaria media and Polygonum aviculare seeds in spring barley (Hordeum vulgare). Asp. Appl. Biol 69:203208.Google Scholar
Westerman, P. R., Wes, J. S., Kropff, M. J., and van der Werf, W. 2003. Annual losses of weed seeds due to predation in organic cereal fields. J. Appl. Ecol 40:824836.Google Scholar
Westerman, P. R., Liebman, M., Menalled, F. D., Heggenstaller, A. H., Hartzler, R. G., and Dixon, P. M. 2005. Are many little hammers effective? Velvetleaf (Abutilon theophrasti) population dynamics in two- and four-year crop rotation systems. Weed Sci 53:382392.CrossRefGoogle Scholar
Whelan, C. J., Willson, M. F., Tuma, C. A., and Souza-Pinto, I. 1991. Spatial and temporal patterns of postdispersal seed predation. Can. J. Bot 69:428436.CrossRefGoogle Scholar
White, S. S. 2000. Weed Seed Predation in Agroecosystems. . Michigan State University, East Lansing, MI. 108 p.Google Scholar
Willson, M. F. and Whelan, C. J. 1990. Variation in postdispersal survival of vertebrate-dispersed seeds: effects of density, habitat, location, and species. Oikos 57:191198.Google Scholar
Zhang, J. 1993. Biology of Harpalus rufipes DeGeer (Coleoptera: Carabidae) in Maine and dynamics of seed predation. . University of Maine, Orono, ME. 154 p.Google Scholar