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Herbicide Effects on Rhizoctonia solani in Vitro and Rhizoctonia Foliar Blight of Soybean (Glycine max)

Published online by Cambridge University Press:  12 June 2017

B. David Black
Affiliation:
Dep. of Plant Pathol, and Crop Physiol., 302 Life Sci. Bldg., Baton Rouge, LA 70803
John S. Russin
Affiliation:
Dep. of Plant Pathol, and Crop Physiol., 302 Life Sci. Bldg., Baton Rouge, LA 70803
James L. Griffin
Affiliation:
Dep. of Plant Pathol, and Crop Physiol., 302 Life Sci. Bldg., Baton Rouge, LA 70803
Johnnie P. Snow
Affiliation:
Dep. of Plant Pathol, and Crop Physiol., 302 Life Sci. Bldg., Baton Rouge, LA 70803

Abstract

Acifluorfen, alachlor, glufosinate, glyphosate, paraquat, and pendimethalin were evaluated for their effects on mycelial growth and sclerotia/microsclerotia production by Rhizoctonia solani AG-1 IA and IB in culture. All of these herbicides except glufosinate and glyphosate were evaluated for effects on severity of Rhizoctonia foliar blight of soybean in the field. In laboratory studies, all herbicides reduced colony radius of R. solani. Growth reductions for IB were greater than for IA in the presence of pendimethalin, alachlor, and acifluorfen, but glufosinate reduced growth of IA more than IB. Sclerotia production by both isolates was prevented by paraquat, greatly reduced by glufosinate, but markedly less affected by the other herbicides tested. In field studies, all tested herbicides influenced severity of Rhizoctonia foliar blight when disease pressure was low, but only paraquat reduced severity when disease pressure was high.

Type
Special Topics
Copyright
Copyright © 1996 by the Weed Science Society of America 

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References

Literature Cited

1. Altman, J. 1969. Predisposition of sugarbeets to Rhizoctonia solani damping-off with herbicides. Phytopathology 59: 1015.Google Scholar
2. Altman, J. and Rovira, A. D. 1989. Herbicide-pathogen interactions in soilborne root diseases. Can. J. Plant Pathol. 11: 166172.CrossRefGoogle Scholar
3. Anonymous. 1994. Louisiana's chemical weed control guide. Louisiana Coop. Ext. Serv., Baton Rouge. Pub. 1565. 159 pp.Google Scholar
4. Atkins, J. G. Jr. and Lewis, W. D. 1954. Rhizoctonia aerial blight of soybean in Louisiana. Phytopathology 44: 215218.Google Scholar
5. Ben-Yephet, Y., Mhameed, S., and Frank, Z. R. 1991. Effect of the herbicide ethalfluralin on net blotch disease of peanut pods. Plant Dis. 75: 11231126.CrossRefGoogle Scholar
6. Berner, D. K., Berggren, G. T. Jr., and Snow, J. P. 1991. Effect of glyphosate on Calonectria crotalariae and red crown rot of soybean. Plant Dis. 75: 809813.CrossRefGoogle Scholar
7. Black, B. D., Griffin, J. L., Russin, J. S., and Snow, J. P. 1994. Weeds as transfer hosts for Rhizoctonia solani AG-1, the causal agent for aerial blight of soybean. Proc. Weed Sci. Soc. Amer. 34: 7.Google Scholar
8. Bowman, J. E. and Sinclair, J. B. 1989. Effect of herbicides on Rhizoctonia seedling disease of soybean in glasshouse experiments. J. Phytopathol. 124: 267274.CrossRefGoogle Scholar
9. Bowman, J. E., Sinclair, J. B., and Wax, L. M. 1981. Interaction of preplant-incorporated herbicides with Rhizoctonia seedling disease of soybean. Phytopathology 71: 1115.Google Scholar
10. Chandler, J. M. and Santelmann, P. W. 1968. Interactions of four herbicides with Rhizoctonia solani on seedling cotton. Weed Sci. 16: 453456.CrossRefGoogle Scholar
11. Fehr, W. R., Caviness, C. E., Burmood, D. T., and Pennington, J. D. 1971. Stages of development descriptions for soybeans, Glycine max(L.) Merr. Crop Sci. 11: 2526.CrossRefGoogle Scholar
12. Galindo, J. J., Abawi, G. S., Thurston, H. D., and Gálvez, G. E. 1982. Source of inoculum and development of web-blight of beans in Costa Rica. Phytopathology 72: 170.Google Scholar
13. Hepperly, P. R., Mignucci, J. S., and Smith, R. S. 1982. Rhizoctonia web blight on soybean in Puerto Rico. Phytopathology 72: 170.Google Scholar
14. Joye, G. F., Berggren, G. T. Jr., and Berner, D. K. 1990. Effect of row spacing and within-row plant population of Rhizoctonia aerial blight of soybean and soybean yield. Plant Dis. 74: 158160.CrossRefGoogle Scholar
15. Kousik, C. S., Snow, J. P., and Valverde, R. A. 1994. Comparison of double-stranded RNA components and virulence among isolates of Rhizoctonia solani AG-1 IA and AG-1 IB. Phytopathology 84: 4449.CrossRefGoogle Scholar
16. Leach, S. S., Murdoch, C. W., and Gordon, C. 1991. Response of selected soilborne fungi and bacteria to herbicides utilized in potato crop management systems in Maine. Amer. Potato J. 68: 269278.CrossRefGoogle Scholar
17. Michailides, T. J. and Spotts, R. A. 1991. Effects of certain herbicides on the fate of sporangiospores of Mucor piriformis and conidia of Botrytis cinerea and Penicillium expansum . Pestic. Sci. 33: 1122.CrossRefGoogle Scholar
18. Muyolo, N. G., Lipps, P. E., and Schmitthenner, A. F. 1993. Anastomosis grouping and variation in virulence among isolates of Rhizoctonia solani associated with dry bean and soybean in Ohio and Zaire. Phytopathology 83: 438444.CrossRefGoogle Scholar
19. Neubauer, R. and Avizohar-Hershenson, Z. 1973. Effects of the herbicide, trifluralin, on Rhizoctonia disease in cotton. Phytopathology 63: 651652.CrossRefGoogle Scholar
20. O'Neill, N. R., Rush, M. C., Horn, N. L., and Carver, R. B. 1977. Aerial blight of soybean caused by Rhizoctonia solani . Plant Dis. Rept. 61: 713717.Google Scholar
21. Pinckard, J. A. and Standifer, L. C. 1966. An apparent interaction between cotton herbicidal injury and seedling blight. Plant Dis. Rept. 50: 172174.Google Scholar
22. Rodriguez-Kabana, R., Curl, E. A., and Funderburk, H. H. Jr. 1966. Effect of four herbicides on growth of Rhizoctonia solani . Phytopathology 56: 13321333.Google Scholar
23. Ross, A.M. and Lembi, C. A. 1985. Applied weed science. Macmillan Publishing Co. page 99.Google Scholar
24. SAS Institute. 1988. SAS/STAT User's Guide, Release 6.03 edition. SAS Institute, Cary, NC. 1028 pp.Google Scholar
25. Shaner, G. and Finney, R. E. 1977. The effect of nitrogen fertilization on the expression of slow-mildewing resistance in Knox wheat. Phytopathology 67: 10511056.Google Scholar
26. Smith, N. R., Dawson, V. T., and Wenzel, M. E. 1945. The effect of certain herbicides on soil microorganisms. Proc. Soil Sci. Soc. Amer. 10: 197201.Google Scholar
27. Verma, P. R. and McKenzie, D. L. 1963. In vitro effects of herbicides on mycelial growth of AG2-1 and AG-4 Rhizoctonia solani isolates from canola/rapeseed. Phytopathology 75: 1363.Google Scholar
28. Yang, X. B., Berggren, G. T. Jr., and Snow, J. P. 1988. Seedling infection of soybean by Rhizoctonia solani AG-1, causal agent to aerial blight. Plant Dis. 72: 644.Google Scholar
29. Yang, X. B., Berggren, G. T. Jr., and Snow, J. P. 1990. Types of Rhizoctonia foliar blight on soybean in Louisiana. Plant Dis. 74: 501504.Google Scholar
30. Yang, X. B., Snow, J. P., and Berggren, G. T. Jr. 1988. Survey of reproductive forms of Rhizoctonia solani on soybean in Louisiana. Plant Dis. 72: 644.Google Scholar
31. Yang, X. B., Snow, J. P., and Berggren, G. T. Jr. 1990. Analysis of epidemics of Rhizoctonia aerial blight of soybean in Louisiana. Phytopathology 80: 386392.CrossRefGoogle Scholar