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Crop Residue Reduces Jointed Goatgrass (Aegilops cylindrica) Seedling Growth

Published online by Cambridge University Press:  12 June 2017

Randy L. Anderson*
Affiliation:
Agric. Res. Serv. U.S. Dep. Agric, Akron, CO 80720

Abstract

Producers need alternative methods to manage jointed goatgrass because there are no herbicides that selectively control jointed goatgrass in winter wheat. The effect of crop residue incorporated in soil on reducing seedling growth of jointed goatgrass was examined in the greenhouse. Residues of corn, proso millet, safflower, grain sorghum, and winter wheat reduced fresh weight of jointed goatgrass by 70 to 85%. Applying N fertilizer at 33 or 66 kg ha−1 diminished this effect, indicating that residue stimulated microbial immobilization of N. Ethiozin applied preemergence at 0.2 μg g−1 soil reduced jointed goatgrass seedling growth by 50%, but combining crop residue with ethiozin did not synergistically improve control of jointed goatgrass. These results suggest that producers may favor winter wheat growth over jointed goatgrass by incorporating crop residue in soil with tillage before planting and by banding N with winter wheat seed at planting.

Type
Research
Copyright
Copyright © 1993 by the Weed Science Society of America 

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References

Literature Cited

1. Anderson, R. L. 1987. Broadleaf weed control in safflower (Carthamus tinctorius) with sulfonylurea herbicides. Weed Technol. 1:242246.CrossRefGoogle Scholar
2. Anderson, R. L. 1989. Environmental factors influencing ethiozin bioactivity on jointed goatgrass. Proc. West. Soc. Weed Sci. 42:8485.Google Scholar
3. Barnes, J. P. and Putnam, A. R. 1986. Evidence for allelopathy by residues and aqueous extracts of rye (Secale cereale). Weed Sci. 34:384390.Google Scholar
4. Barnes, J. P., Putnam, A. R., and Burke, B. A. 1986. Allelopathic activity of rye (Secale cereale L.). p. 271286 in Putnam, A. R. and Tang, C. S., eds. The Science of Allelopathy. John Wiley & Sons, New York.Google Scholar
5. Cochran, V. L., Elliott, L. F., and Papendick, R. I. 1977. The production of phytotoxins from surface crop residues. Soil Sci. Soc. Am. J. 41:903908.Google Scholar
6. Cochran, V. L., Elliott, L. F., and Papendick, R. I. 1980. Carbon and nitrogen movement from surface-applied wheat (Triticum aestivum) straw. Soil Sci. Soc. Am. J. 44:978982.Google Scholar
7. Dao, T. H. 1987. Crop residues and management of annual grasses in continuous no-till wheat (Triticum aestivum). Weed Sci. 35:395400.Google Scholar
8. Donald, W. W. and Ogg, A. G. Jr. 1991. Biology and control of jointed goatgrass (Aegilops cylindrica), a review. Weed Technol. 5:317.CrossRefGoogle Scholar
9. Elliott, L. F., Cochran, V. L., and Papendick, R. I. 1981. Wheat residue and nitrogen placement effects on wheat growth in the greenhouse. Soil Sci. 131:4852.Google Scholar
10. Elliott, L. F., McCalla, T. M., and Waiss, A. Jr. 1978. Phytotoxicity associated with residue management. p. 131146 in Oschwald, W. R., ed. Crop Residue Management Systems. Am. Soc. Agron., Crop Sci. Soc. Am., and Soil Sci. Soc. Am., Madison, WI.Google Scholar
11. Fenster, C. R. 1977. Conservation tillage in the northern plains. Soil Water Conserv. J. 32:3742.Google Scholar
12. Greb, B. W. 1979. Reducing drought effects on croplands in the west-central Great Plains. U. S. Dep. Agric. Inf. Bull. No. 420. 31 p.Google Scholar
13. Guenzi, W. D. and McCalla, T. M. 1962. Inhibition of germination and seedling development by crop residues. Soil Sci. Soc. Am. J. 26:456458.Google Scholar
14. Guenzi, W. D., McCalla, T. M., and Norstadt, F. A. 1967. Presence and persistence of phytotoxic substances in wheat, oat, corn, and sorghum residues. Agron. J. 59:163165.Google Scholar
15. Liebl, R., Simmons, F. W., Wax, L. M., and Stoller, E. W. 1992. Effect of rye (Secale cereale) mulch on weed control and soil moisture in soybean (Glycine max). Weed Technol. 6:838846.Google Scholar
16. Mann, S. S. 1976. Cytoplasmic homology between Aegilops squarrosa L. and A. cylindrica Host. Crop Sci. 16:757761.Google Scholar
17. McCalla, T. M. and Haskins, F. A. 1964. Phytotoxic substances from soil microorganisms and crop residues. Bacteriol. Rev. 28:181207.Google Scholar
18. Norstadt, F. A. and McCalla, T. M. 1968. Microbially induced phytotoxicity in stubble-mulched soil. Soil Sci. Soc. Am. J. 32:241245.Google Scholar
19. Penn, D. J. and Lynch, J. M. 1981. Effect of decaying couch grass rhizomes on the growth of barley. J. Appl. Ecol. 18:669674.Google Scholar
20. Peterson, B. B., Shea, P. J., and Wicks, G. A. 1988. Acetanilide activity and dissipation as influenced by formulation and wheat stubble. Weed Sci. 36:243249.Google Scholar
21. Putnam, A. R. and Weston, L. A. 1986. Adverse impacts of allelopathy in agricultural systems. p. 4356 in Putnam, A. R. and Tang, C. S., ed. The Science of Allelopathy. John Wiley & Sons, New York.Google Scholar
22. Shanahan, J. F., Anderson, R. L., and Greb, B. W. 1988. Productivity and water use of proso millet grown under three crop rotations in the central Great Plains. Agron. J. 80:487492.Google Scholar
23. Smika, D. E., Page, A. B., and Mickelson, R. H. 1986. Snow management for crop production in the central Great Plains. p. 335344 in Steppuhn, H. and Nichlaichuk, W., ed. Proc. of Symposium Snow Manage, for Agric, Great Plains Agric. Council Public. 120.Google Scholar
24. Steel, R.G.D. and Torrie, J. H. 1980. p. 137233 in Principles and Procedures of Statistics. McGraw-Hill, New York.Google Scholar
25. Steinsiek, J. W., Oliver, L. R., and Collins, F. C. 1982. Allelopathic potential of wheat (Triticum aestivum) straw on selected weed species. Weed Sci. 30:495497.Google Scholar
26. Tanaka, D. L. and Anderson, R. L. 1992. Fallow method affects downy brome population in winter wheat. J. Prod. Agric. 5:117119.Google Scholar
27. Weston, L. A. and Putnam, A. R. 1986. Inhibition of legume seedling growth by residues and extracts of quackgrass (Agropyron repens). Weed Sci. 34:366372.Google Scholar
28. Williams, J. L. Jr. and Wicks, G. A. 1978. Weed control problems associated with crop residue systems. p. 165172 in Oschald, W. R., ed. Crop Residue Management Systems. Am. Soc. Agron., Crop Sci. Soc. Am., and Soil Sci. Soc. Am., Madison, WI.Google Scholar
29. Wolt, J. D., Rhodes, G. N. Jr., Graveel, J. G., Glosauer, E. M., Amin, M. K., and Church, P. L. 1989. Activity of imazaquin in soil solution as affected by incorporated wheat (Triticum aestivum) straw. Weed Sci. 37:254258.Google Scholar