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Nitrogen Release from Weed Residue

Published online by Cambridge University Press:  20 January 2017

Laura E. Lindsey*
Affiliation:
Department of Crop and Soil Sciences, Michigan State University, East Lansing, MI 48824
Kurt Steinke
Affiliation:
Department of Crop and Soil Sciences, Michigan State University, East Lansing, MI 48824
Darryl D. Warncke
Affiliation:
Department of Crop and Soil Sciences, Michigan State University, East Lansing, MI 48824
Wesley J. Everman
Affiliation:
Department of Crop Science, North Carolina State University, Box 7620, Raleigh, NC 27695
*
Corresponding author's E-mail: lindsey.233@osu.edu

Abstract

Weed residues can impact nitrogen (N) cycling in agro-ecosystems that primarily utilize POST weed control. Quantifying this potential N source or sink may influence weed control and fertilization practices. A laboratory experiment measured the rate and quantity of N release from common lambsquarters, common ragweed, and giant foxtail. Weeds were grown in the field at four N rates (0, 67, 134, or 202 kg N ha−1) and collected at two weed heights (10 or 20 cm) to give a range of residue chemical composition. Residue chemical composition parameters of carbon : N (C : N) ratio and total N, nitrate-N, acid detergent fiber, and neutral detergent fiber concentration were measured and correlated with N release. Nitrogen release from weed residue mixed with soil was determined over a 12-wk period. Nitrogen was released from all weed residues at 12 wk. Prior to 12 wk, N was immobilized by giant foxtail grown with no N application. Prior to 4 wk, N was immobilized by 20-cm weeds grown with no N application. Nitrogen release from weed residue was negatively correlated with C : N ratio. Weed residue with a C : N ratio of < 19 (weeds grown with N application and 10-cm weeds) released 25 to 45% total N concentration within 2 wk and may contribute N within the growing season. Weed residue with a C : N ratio > 19 (giant foxtail and 20-cm weeds grown with no N) initially immobilized N and may not contribute N within the growing season.

Type
Soil, Air, and Water
Copyright
Copyright © Weed Science Society of America 

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Footnotes

Current address: Department of Horticulture and Crop Science, Ohio State University, 2021 Coffey Road, Columbus, OH 43210.

References

Literature Cited

Agehara, S. and Warncke, D. D. 2005. Soil moisture and temperature effects on nitrogen release from organic nitrogen sources. Soil Sci. Soc. Am. J. 69: 18441855.Google Scholar
Blackshaw, R. E. and Brandt, R. N. 2008. Nitrogen fertilizer rate effects on weed competitiveness is species dependent. Weed Sci. 56: 743747.Google Scholar
Bremner, J. M. 1996. Nitrogen-total. Pages 10851121 in Sparks, D. L., ed. Methods of soil analysis. Part 3. Madison, WI: Soil Science Society of America, Inc.Google Scholar
Brown, R. H. 1978. A difference in N use efficiency in C3 and C4 plants and its implications in adaptation and evolution. Crop Sci. 18: 9398.Google Scholar
Brown, R. H. 1985. Growth of C3 and C4 grasses under low N levels. Crop Sci. 25: 954957.Google Scholar
Carey, J. B. and Kells, J. J. 1995. Timing of total postemergence herbicide applications to maximize weed control and corn (Zea mays) yield. Weed Technol. 9: 356361.Google Scholar
Cathcart, R. J. and Swanton, C. J. 2003. Nitrogen management will influence threshold values of green foxtail (Setaria viridis) in corn. Weed Sci. 51: 975986.Google Scholar
Chaves, B., De Neve, S., Hofman, G., Boeckx, P., and Van Cleemput, O. 2004. Nitrogen mineralization of vegetable root residues and green manures to their (bio)chemical composition. Euro. J. of Agron. 21: 161170.Google Scholar
Creamer, N. G. and Baldwin, K. R. 2000. An evaluation of summer cover crops for use in vegetable production systems in North Carolina. Hort. Sci. 35: 600603.Google Scholar
Culpepper, A. S. and York, A. C. 1999. Weed management in glufosinate-resistant corn (Zea mays). Weed Technol. 13: 324333.Google Scholar
Dalley, C. D., Bernards, M. L., and Kells, J. J. 2006. Effect of weed removal and row spacing on soil moisture in corn (Zea mays). Weed Technol. 20: 399409.Google Scholar
Dalley, C. D., Kells, J. J., and Renner, K. A. 2004. Effect of glyphosate application timing and row spacing on corn (Zea mays) and soybean (Glycine max). Weed Technol. 18: 165176.Google Scholar
Deinum, B., van Es, A. J. H., and Van Soest, P. J. 1968. Climate, nitrogen and grass. II. The influence of light intensity, temperature and nitrogen on in vivo digestibility of grass and the prediction of these effects from some chemical procedures. Neth. J. Agr. Sci. 16: 217.Google Scholar
De Neve, S. and Hofman, G. 1996. Modelling N mineralization of vegetable crop residues during laboratory incubations. Soil Biol. Biochem. 28: 14511457.Google Scholar
DiTomaso, J. M. 1995. Approaches for improving crop competitiveness through the manipulation of fertilization strategies. Weed Sci. 43: 491497.Google Scholar
Food and Agriculture Organization of the United Nations. 2001. FAO Statistical Databases. http://www.fao.org/corp/statistics/en/. Accessed: October 3, 2012.Google Scholar
Fox, R. H., Myers, R.J.K., and Vallis, I. 1990. The nitrogen mineralization rate of legume residues in soil as influenced by their polyphenol, lignin, and nitrogen contents. Plant Soil 129: 251259.Google Scholar
Gower, S. A., Loux, M. M., Cardina, J., Harrison, S. K., Sprankle, P. L., Probst, N. J., Bauman, T. T., Bugg, W., Curran, W. S., Currie, R. S., Harvey, R. G., Johnson, W. G., Kells, J. J., Owen, M.D.K., Regehr, D. L., Slack, C. H., Spaur, M., Sprague, C. L., VanGessel, M., and Young, B. G. 2003. Effect of postemergence glyphosate application timing on weed control and grain yield in glyphosate-resistant corn: results of a 2-yr multistate study. Weed Technol. 17: 821828.Google Scholar
Hans, S. R. and Johnson, W. G. 2002. Influence of shattercane [Sorghum bicolor (L.) Moench.] interference on corn (Zea mays L.) yield and nitrogen accumulation. Weed Technol. 16: 787791.Google Scholar
Haynes, R. J. 1986. The decomposition process: Mineralization, immobilization, humus formation and degradation. Pages 5276 in Mineral Nitrogen in the Plant-Soil System. Ed. R. J. Haynes. Pp. 52–176, Orlando, FL: Academic.Google Scholar
Jensen, E. S. 1994. Mineralization-immobilization of nitrogen in soil amended with low C:N ratio plant residues with different particle size. Soil Biol. Biochem 26: 519521.Google Scholar
Joern, B. and Sawyer, J. 2006. Nitrogen and corn use. Pages 68 in Concepts and rationale for regional nitrogen rate guidelines for corn. Ames, IA: Iowa State University Extension.Google Scholar
Johnson, W. G., Bradley, P. R., Hart, S. E., Buesinger, M. L., and Massey, R. E. 2000. Efficacy and economics of weed management in glyphosate-resistant corn (Zea mays). Weed Technol. 14: 5765.Google Scholar
Jung, H. G. and Vogel, K. P. 1986. Influence of lignin on digestibility of forage cell wall material. J. Anim. Sci. 62: 17031712.Google Scholar
Justes, E., Mary, B., and Nicolardot, B. 2009. Quantifying and modeling C and N mineralization kinetics of catch crop residues in soil: parameterization of the residue decomposition module of STICS model for mature and non mature residues. Plant Soil 325: 171185.Google Scholar
Kirkland, K. J. and Beckie, H. J. 1998. Contribution of nitrogen fertilizer placement to weed management in spring wheat (Triticum aestivum). Weed Technol. 12: 507514.Google Scholar
Majumder, M., Skukla, A. K., and Arunachalam, A. 2008. Nutrient release and fungal succession during decomposition of weed residues in a shifting cultivation system. Comm. Biometry Crop Sci. 3: 4559.Google Scholar
Marten, G. C. and Andersen, R. N. 1975. Forage nutritive value and palatability of 12 common annual weeds. Crop Sci. 15: 821827.Google Scholar
Mikha, M. M., Rice, C. W., and Benjamin, J. G. 2006. Estimating soil mineralizable nitrogen under different management practices. Soil Soc. Am. J. 70: 15221531.Google Scholar
Müller, M. M., Sundman, V., Soininvaara, O., and Meriläinen, A. 1988. Effect of chemical composition on release of nitrogen from agricultural plant materials decomposing in soil under field conditions. Biol. Fertil. Soils 6: 7883.Google Scholar
Nicolardot, B., Recous, S., and Mary, B. 2001. Simulation of C and N mineralization during crop residue decomposition: a simple dynamic model based on the C:N ratio of the residues. Plant Soil 228: 83103.Google Scholar
Parmelee, R. W., Beare, M. H., and Blair, J. M. 1989. Decomposition and nitrogen dynamics of surface weed residues in no-tillage agroecosystems under drought conditions: Influence of resource quality on the decomposer community. Soil. Biol. Biochem. 21: 97103.Google Scholar
Qasem, J. R. 1992. Root growth, development and nutrient uptake of tomato (Lycopersicon esculentum) and Chenopodium album . Weed Res. 33: 3542.Google Scholar
Ramakrishnan, P. S. 1992. Shifting agriculture and sustainable development. Pages 154155 in Man and the biosphere series. Paris: Parthenon.Google Scholar
Rice, C. W. and Havlin, J. L. 1994. Integrating mineralizable nitrogen indices into fertilizer nitrogen recommendations. P 13. in Havlin, J. L., ed. Soil testing: prospects for improving nutrient recommendations. SSSA Spec. Publ. No. 40. SSSA Madison, WI.Google Scholar
Sage, R. F. and Pearcy, R. W. 1987. The nitrogen use efficiency of C3 and C4 plants. Plant Physiol. 84: 954958.Google Scholar
Saint-Fort, R., Frank, K. D., and Schepers, J. S. 1990. Role of nitrogen mineralization in fertilizer recommendations. Commun. Soil Sci. Plant Anal. 21: 1316.Google Scholar
Sanchez, J. E., Wilson, T. C., Kizilkaya, K., Parker, E., and Harwood, R. R. 2001. Enhancing the mineralizable nitrogen pool through substrate diversity in long term cropping systems. Soil Sci. Soc. Am. J. 65: 14421447.Google Scholar
SAS Institute. 2003. The MIXED Procedure. Pages 26642844 in SAS/STAT User's Guide, Ver. 9.1. Cary, NC: SAS Institute.Google Scholar
Schultz, B. B. 1985. Levene's test for relative variation. Syst. Zool. 34: 449456.Google Scholar
Stanford, G. and Smith, S. J. 1972. Nitrogen mineralization potentials of soil. Soil Sci. Soc. Am. Proc. 36: 465472.Google Scholar
Stevenson, F. J. and Cole, M. A. 1986. Cycles of Soil Carbon, Nitrogen, Phosphorous, Sulfur, Micronutrients. New York: Wiley. 449 p.Google Scholar
Tilman, D., Cassman, K. G., Matson, P. A., Naylor, R., and Polasky, S. 2002. Agricultural sustainability and intensive production practices. Nature 418: 671677.Google Scholar
Trinsoutrot, I., Recous, S., Bentz, B., Lineres, M., Cheneby, D., and Nicolardot, B. 2000. Biochemical quality of crop residues and carbon and nitrogen mineralization kinetics under nonlimiting nitrogen conditions. Soil Sci. Soc. Am. J. 64: 918926.Google Scholar
Undersander, D. and Wolf, M. 2006. Determination of Acid Detergent Fiber by Refluxing. National Forage Testing Association Reference Method. National Forage Testing Association. http://foragetesting.org/files/NFTAReferenceMethodADF-09-18-06.pdf. Accessed: November 8, 2012.Google Scholar
Van Kessel, J. S., Reeves, J. B. III, and Meisinger, J. J. 2000. Nitrogen and carbon mineralization of potential manure components. J. Environ. Qual. 29: 16691677.Google Scholar
Van Soest, P. J., Mertens, D. R., and Deinum, B. 1978. Preharvest factors influencing quality of conserved forage. J. Animal Sci. 47: 712721.Google Scholar
Van Soest, P. J., Robertson, J. B., and Lewis, B. A. 1991. Methods for dietary fiber, neutral detergent fiber and nonstarch polysaccharides in relation to animal nutrition. J. Dairy Sci. 74: 35833597.Google Scholar
Vazquez, R. I., Stinner, B. R., and McCartney, D. A. 2003. Corn and weed residue decomposition in northeast Ohio organic and conventional dairy farms. Agriculture, Ecosystems and Environment 95: 559565.Google Scholar
Vigil, M. F. and Kissel, D. E. 1991. Equations for estimating the amount of nitrogen mineralized from crop residues. Soil Sci. Soc. Am. J. 55: 757761.Google Scholar