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Bioassay of naturally occurring allelochemicals for phytotoxicity

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Abstract

The bioassay has been one of the most widely used tests to demonstrate allelopathic activity. Often, claims that a particular plant species inhibits the growth of another are based entirely on the seed germination response to solvent extracts of the suspected allelopathic plant; few of these tests are of value in demonstrating allelopathy under natural conditions. The veracity of the bioassay for evaluating naturally occurring compounds for phytotoxicity depends upon the physiological and biochemical response capacity of the bioassay organism and the mechanism(s) of action of the allelochemicals. The possibility that more than one allelochemical, acting in concert at very low concentrations, may be responsible for an observed allelopathic effect makes it imperative that bioassays be extremely sensitive to chemical growth perturbation agents. Among the many measures of phytotoxicity of allelochemicals, the inhibition (or stimulation) of seed germination, radicle elongation, and/or seedling growth have been the parameters of choice for most investigations. Few of these assays have been selected with the view towards the possible mechanism of the allelopathic effect.

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References

  • Anderson, R.C., andLoucks, O.L. 1966. Osmotic pressure influence on germination tests for antibiosis.Science 152:771–773.

    Google Scholar 

  • Avers, C.J., andGoodwin, R.H. 1956. Studies on Roots. IV. Effects of coumarin and scopoletin on the standard root growth pattern ofPhleum pratense.Am. J. Bot. 43:612–620.

    Google Scholar 

  • Bell, D.T. 1974. The influence of osmotic pressure in tests for allelopathy.Bromus rigidus, Adenostoma fasciculatum, Brassica nigra. Trans. III. State Acad. Sci. 67:312–317.

    Google Scholar 

  • Blum, U., andDalton, B.R. 1985. Effects of ferulic acid, an allelopathic compound, on leaf expansion of cucumber seedlings grown in nutrient culture.J. Chem. Ecol.11:279–301.

    Google Scholar 

  • Blum, U., Dalton, B.R., andRawlings, J.O. 1984. Effects of ferulic acid and some of its microbial metabolic products on radicle growth of cucumber.J. Chem. Ecol. 10:1169–1191.

    Google Scholar 

  • Blum, U., Dalton, B.R., andShann, J.R. 1985a. Effects of various mixtures of ferulic acid and some of its microbial metabolic products on cucumber leaf expansion and dry matter in nutrient culture.J. Chem. Ecol. 11:619–641.

    Google Scholar 

  • Blum, U., Dalton, B.R., andShann, J.R. 1985b. Effects of ferulic andp-coumaric acids in nutrient culture of cucumber leaf expansion as influenced by pH.J. Chem. Ecol. 11:1567–1582.

    Google Scholar 

  • Cleland, C.F., andTanaka, O. 1982. Influence of plant growth substances and salicyclic acid on flowering and growth in the Lemnaceae (duckweeds).Aquat. Bot. 13:3–20.

    Google Scholar 

  • Einhellig, F. A. 1986. Mechanisms and modes of action of allelochemicals, pp. 171–188,in A.R. Putnam and C.-S. Tang (eds.). The Science of Allelopathy. John Wiley & Sons, New York.

    Google Scholar 

  • Einhellig, F.A., andRasmussen, J.A. 1979. Effects of three phenolic acids on chlorophyll content and growth of soybean and grain sorghum seedlings.J. Chem. Ecol. 5:815–824.

    Google Scholar 

  • Einhellig, F.A., Rice, E.L., Risser, P.C., andWender, S.H. 1970. Effects of scopoletin on growth, CO2 exchange rates, and concentrations of scopoletin, scopolin, and chlorogenic acid in tobacco, sunflower and pigweed.Bull. Torrey Bot. Club 97:22–23.

    Google Scholar 

  • Einhellig, F.A., Leather, G.R., andHobbs, L.L. 1985. Use ofLemna minor L. as a bioassay in allelopathy,J. Chem. Ecol. 11:65–72.

    Google Scholar 

  • French, R.C., andLeather, G.R. 1979. Screening of nonanal and related volatile flavor compounds on the germination of 18 species of weed seed.J. Agric. Food Chem. 27:828–832.

    Google Scholar 

  • Harper, J.R., andBalke, N.B. 1981. Characterization of the inhibition ofK + absorption in oat roots by salicyclic acid.Plant Physiol. 68:1349–1353.

    Google Scholar 

  • Jain, A., andSrivastava, H.S. 1981. Effect of salicyclic acid on nitrate reductase activity in maize seedlings.Physiol. Plant. 5:339–342.

    Google Scholar 

  • Jankay, P., andMuller, W.H. 1976. The relationship among umbelliferone, growth, and peroxidase levels in cucumber roots.Am. J. Bot. 63:126–132.

    Google Scholar 

  • Kobza, J., andEinhellig, F.A. 1987. The effects of ferulic acid on the mineral nutrition of grain sorghum.Plant Soil 98:99–109.

    Google Scholar 

  • Koeppe, D.E. 1972. Some reactions of isolated corn mitochondria influenced by juglone.Physiol. Plant. 27:89–94.

    Google Scholar 

  • Koller, D., andHadas, A. 1982. Water relations in the germination of seeds, pp. 401–433,in O. L. Lange, P. S. Nobel, C. B. Osmond, and H. Ziegler (eds.). Physiological Plant Ecology II. Springer-Verlag, Berlin, Heidelberg.

    Google Scholar 

  • Leather, G.R. 1987. The seed germination process, pp. 1–4,in G.W. Frazier and R.A. Evans (eds.). Seed and Seedbed Ecology of Rangeland Plants, USDA-ARS Proceedings of Symposium, June 1987.

  • Leather, G.R., andEinhellig, F.A. 1985. Mechanism of allelopathic action in bioassay.Am. Chem. Soc. Symp. Ser. 268:197–205.

    Google Scholar 

  • Leather, G.R., andEinhellig, F.A. 1986. Bioassays in the study of allelopathy, pp. 133–145,in A.R. Putnam and C.-S. Tang (eds.). The Science of Allelopathy. John Wiley & Sons, New York.

    Google Scholar 

  • Lee, T.T. 1980. Effect of phenolic substances on metabolism of exogenous indole-3-acetic acid in maize stems.Physiol. Plant. 50:107–112.

    Google Scholar 

  • Lee, T.T., andSkoog, F. 1965. Effects of hydroxybenzoic acids on indole-acetic acid inactivation by tobacco callus extracts.Physiol. Plant. 18:577–585.

    Google Scholar 

  • Lee, T.T., Starratt, A.N., andJevnikar, J.J. 1982. Regulation of enzymic oxidation of indole-3-acetic acid by phenols: Structure-activity relationships.Phytochemistry 21:517–523.

    Google Scholar 

  • Muller, W.H. 1965. Volatile materials produced bySalvia leucophylla: Effects on seedling growth and soil bacteria.Bot. Gaz. 126:195–200.

    Google Scholar 

  • Muller, W.H., Lorber, D., Haley, B., andJohnson, K. 1969. Volatile growth inhibitors produced bySalvia leucophylla: Effect of oxygen uptake by mitochondrial suppressions.Bull. Torrey Bot. Club 96:89–96.

    Google Scholar 

  • Nyberg, P.F. 1986. Effects of allelopathic chemicals on photosynthetic rate ofLemna minor. MA thesis. University of South Dakota, Vermillion.

    Google Scholar 

  • Parker, C. 1966. The importance of shoot entry in the action of herbicides applied to soil.Weeds 14:117–121.

    Google Scholar 

  • Putnam, A.R. 1985. Weed allelopathy, pp. 131–155,in S.O. Duke (ed.). Weed Physiology, Vol. I, Reproduction and Ecophysiology. CRC Press, Boca Raton, Florida.

    Google Scholar 

  • Ramirez-Toro, G.I., Leather, G.R., andEinhellig, F.A. 1988. Effects of three phenolic compounds onLemna gibba G3.J. Chem. Ecol. 14:845–853.

    Google Scholar 

  • Ray, S.D., Guruprasad, K.M., andLaioraya, M.M. 1980. Antagonistic action of phenolic compounds on abscisic acid-induced inhibition of hypocotyl growth.J. Exp. Bot. 31:1651–1656.

    Google Scholar 

  • Rice, E. L. 1984. Allelopathy, 2nd ed. Academic Press, Orlando, Florida. 422 pp.

    Google Scholar 

  • Sato, T., Kiuchi, F., andSankawa, U. 1982. Inhibition of phenyalanine ammonia-lyase by cinnamic acid derivatives and related compounds.Phytochemistry 21:845–850.

    Google Scholar 

  • Scholes, K. 1987. Effects of six classes of allelochemicals on growth, photosynthesis, and chlorophyll content inL. minor. MA thesis. University of South Dakota, Vermillion.

    Google Scholar 

  • Schwimmer, S. 1958. Influence of polyphenols and potato components on potato phosphorylase.J. Biol. Chem. 232:715–721.

    Google Scholar 

  • Van Sumere, C.F., Cottenie, J., Deoreef, J., andKint, J. 1971. Biochemical studies in relation to the possible germination regulatory role of naturally occurring coumarin and phenolics.Recent Adv. Phytochem. 4:165–221.

    Google Scholar 

  • Weidenhamer, J.D., Morton, T.C., andRomeo, J.T. 1987. Solution volume and seed number: Often overlooked factors in allelopathic bioassays.J. Chem. Ecol. 13:1481–1491.

    Google Scholar 

  • Yopp, J.H. 1985. Bioassays for plant hormones and other naturally occurring plant growth regulators, pp. 329–477,in N.B. Mandava (ed.). Handbook of Natural Presticides: Methods, Vol. I, Theory, Practice, and Detection. CRC Press, Boca Raton, Florida.

    Google Scholar 

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Leather, G.R., Einhellig, F.A. Bioassay of naturally occurring allelochemicals for phytotoxicity. J Chem Ecol 14, 1821–1828 (1988). https://doi.org/10.1007/BF01013479

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