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Uptake and Translocation of 14C-Fluazifop by Quackgrass (Agropyron repens)

Published online by Cambridge University Press:  12 June 2017

Nimal R. Chandrasena
Affiliation:
School of Plant Biology, Univ. Coll. of N. Wales, Bangor, Gwynedd, U.K.
Geoff R. Sagar
Affiliation:
School of Plant Biology, Univ. Coll. of N. Wales, Bangor, Gwynedd, U.K.

Abstract

Detached leaves and whole plants of quackgrass [Agropyron repens (L.) Beauv. # AGRRE] were used to study uptake and translocation of butyl esters of 14C-fluazifop {(±)-2-[4-[[5-(trifluoromethyl)-2-pyridinyl] oxy] phenoxy] propanoic acid}, with or without additional adjuvants. In the absence of adjuvants 3.2% of applied radioactivity entered detached quackgrass leaves by 6 h, and at the end of 24 h, 6.0% had penetrated. The presence of additives increased uptake by leaves significantly. In the presence of the nonionic surfactant Agral (nonyl phenol ethoxylate) at 0.2% (v/v) or the oil-additive Actipron (self-emulsifying adjuvant oil) at 2.0% (v/v), 17.2 and 12.9% of applied radioactivity, respectively, entered the leaves by 24 h. Evidence of dependence of phloem translocation of the radioactivity on source-sink relationships of the plant was obtained in the studies with whole plants. Translocation measured up to 7 days after treatment showed that radioactivity was concentrated in areas such as young developed leaves, young stems, and rhizome apices. Rhizomes appear to be major sinks for the accumulation of radioactivity and at 7 days 0.5% of applied radioactivity was found there. In wholeplant experiments the two adjuvants either individually or in mixture increased the uptake of 14C-fluazifop significantly. However, a corresponding increase in basipetal translocation was found only in one experiment. Much of the increased activity that had entered the leaves in the presence of adjuvants was found to have moved to areas distal to the treated zone or remained within the treated zones. In all experiments, applied 14C was not fully recovered. Evidence of significant volatility losses from treated surfaces was obtained and it is thought that this may be the main reason for the inability to recover all of the applied activity.

Type
Physiology, Chemistry, and Biochemistry
Copyright
Copyright © 1986 by the Weed Science Society of America 

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References

Literature Cited

1. Barrentine, J. L. and Warren, C. F. 1970. Isoparaffinic oil as a carrier for chlorpropham and terbacil. Weed Sci. 16:365372.Google Scholar
2. Boldt, P. F. and Putnam, A. R. 1980. Selectivity mechanisms for foliar applications of dichlofop-methyl. I. Retention, absorption, translocation, and volatility. Weed Sci. 26:474477.Google Scholar
3. Bukovac, M. J., Sargent, J. A., Powell, R. G., and Blackman, G. E. 1971. Studies on foliar penetration. J. Exp. Bot. 22:598612.CrossRefGoogle Scholar
4. Chandrasena, J.P.N.R. and Sagar, G. R. 1984. Effects of fluazifop-butyl on shoot growth and rhizome buds of Elymus repens (L.) Gould. Weed Res. 24:297303.Google Scholar
5. Claus, J. S. and Behrens, R. 1976. Glyphosate translocation and quackgrass rhizome bud kill. Weed Sci. 24:149152.Google Scholar
6. Coats, G. E. and Foy, C. L. 1974. Effect of petroleum oils on the uptake of atrazine 14C by corn. Weed Sci. 22:220226.Google Scholar
7. Devine, M. D. and Bandeen, J. D. 1983. Fate of glyphosate in Agropyron repens (L.) Beauv. grown under low temperature conditions. Weed Res. 23:6975.CrossRefGoogle Scholar
8. Gibbard, M., Smith, M. R., and Stoddart, G. B. 1982. Annual and perennial grass weed control with fluazifop-butyl in oilseed rape, potatoes, and other broad-leaved crops. Proc. Br. Crop Protection Conf. – Weeds 18:819825.Google Scholar
9. Gottrup, O., O'Sullivan, P. A., Schraa, R. J., and Vanden Born, W. H. 1976. Uptake, translocation, metabolism, metabolism and selectivity of glyphosate in Canada thistle and leafy spurge. Weed Res. 16:197201.Google Scholar
10. Kells, J. J., Meggitt, W. F., and Penner, D. 1984. Absorption, translocation, and activity of fluazifop-butyl as influenced by plant growth stage and environment. Weed Sci. 32:143149.Google Scholar
11. Knott, C. M. 1982. Postemergence control of grass weeds in peas with fluazifop-butyl. Proc. Br. Crop Protection Conf. – Weeds 18:803809.Google Scholar
12. McIntyre, G. I. and Hsiao, A. I. 1982. Influence of nitrogen and humidity on rhizome bud growth and glyphosate translocation in quackgrass (Agropyron repens). Weed Sci. 30:655660.Google Scholar
13. McWhorter, C. G. and Jordan, T. N. 1976. Effect of adjuvants on the toxicity of dalapon to johnsongrass. Weed Sci. 24:257260.Google Scholar
14. McWhorter, C. G., Jordan, T. N., and Wills, G. D. 1980. Translocation of 14C-glyphosate in soybeans (Glycine max) and johnsongrass (Sorghum halepense). Weed Sci. 26:113118.Google Scholar
15. Norris, R. F. 1982. Action and fate of adjuvants in plants. Pages 6883 in Adjuvants for Herbicides. Weed Sci. Soc. Am. Google Scholar
16. Plowman, R. E., Stonebridge, W., and Hawtree, J. N. 1980. Fluazifop-butyl – a new selective herbicide for the control of annual and perennial grass weeds. Proc. 1980 Br. Crop Protection Conf. – Weeds. 2937.Google Scholar
17. Prasad, R., Foy, C. L., and Crafts, A. S. 1967. Effects of relative humidity on absorption and translocation of foliarly applied dalapon. Weeds 15:149156.CrossRefGoogle Scholar
18. Richard, E. P. Jr. and Slife, F. W. 1979. In vivo and in vitro characterization of the foliar entry of glyphosate in hemp dogbane (Apocynum cannabinum). Weed Sci. 27:426433.CrossRefGoogle Scholar
19. Sandberg, C. L., Meggitt, W. F., and Penner, D. 1980. Absorption, translocation, and metabolism of 14C-glyphosate in several weed species. Weed Res. 20:195200.CrossRefGoogle Scholar
20. Schultz, M. E. and Burnside, O. C. 1980. Absorption, translocation, and metabolism of 2,4-D and glyphosate in hemp dogbane (Apocynum cannabinum). Weed Sci. 28:1320.Google Scholar
21. Sharma, M. P. and Vanden Born, W. H. 1973. Fate of picloram in Canada thistle, soybean, and barley. Weed Sci. 21:350353.Google Scholar
22. Singh, J. N., Basler, E., and Santelmann, P. W. 1972. Factors influencing absorption and translocation of prometryn. Pestic. Biochem. Physiol. 2:143152.Google Scholar
23. Verity, J., Walker, A., and Drenan, D.S.H. 1981. Aspects of the selective phytotoxicity of mathazole. III. Behavior in plants following foliar treatments. Weed Res. 21:317324.Google Scholar
24. Wyrill, J. B. III and Burnside, O. C. 1976. Absorption, translocation, and metabolism of 2,4-D and glyphosate in common milkweed and hemp dogbane. Weed Sci. 24:557566.Google Scholar