Warianty tytułu
Języki publikacji
Abstrakty
Seven-day-old seedlings of cucumber (Cucumis sativus L.) cv. Wisconsin were treated with 0.1 mM solutions of cinnamic acid (ferulic and p-coumaric acids) and benzoic acid (p-hydroxybenzoic and vanillic acids) derivatives as stressors. The content of free and glucosylated soluble phenols and the activity of phenylalanine ammonia-lyase (E.C.4.3.1.5), phenol-β-glucosyltransferase (E.C.2.4.1.35.), and β-glucosidase (E.C.3.2.1.21.) in seedling roots as well as their length and fresh weight were examined. Changes in glucosylated phenolic content and phenol-β-glucosyltranspherase activity were observed under the influence of all phenolics applied. Treatment with ferulic and p-coumaric acids stimulated the increase of phenylalanine ammonia-lyase and β-glucosidase activity and slightly inhibited cucumber root growth.
Wydawca
Czasopismo
Rocznik
Tom
Numer
Opis fizyczny
p.405-410,fig.
Twórcy
autor
- Agricultural University, Wolynska 35, 60-637 Poznan, Poland
Bibliografia
- Ahmad S.A., Hopkins T.L. 1993. Glucosylation of plant phenolics by phenol-β-glucosyltransferase in larval tissues of the tobacco hornworm Manduca sexta (L.). Insect Biochem. Molec. Biol. 23: 581–589.
- Appel H.M. 1993. Phenolics in ecological interactions: The importance of oxidation. J. Chem. Ecol. 19: 1521–1552.
- Baziramakenga R., Leroux G.D., Simard R.R. 1995. Effects of benzoic and cinnamic acids on membrane permeability of soybean roots. J. Chem. Ecol. 21: 1271–1285.
- Beffa R., Martin H.V. Pilet P.-E. 1990. In vitro oxidation of indoleacetic acid by soluble auxin-oxidases and peroxidases from maize roots. Plant Physiol. 485–491.
- Borchert R. 1978. Time course and spatial distribution of phenylalanine ammonia-lyase and peroxidase activity in wounded potato tuber tissue. Plant Physiol. 62: 789–793.
- Bradford M.M. 1976. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal. Biochem. 72: 248–254.
- Cahill D.M., McComb J.A. 1992. A comparison of changes in phenylalanine ammonia-lyase activity, lignin and phenolic synthesis in the roots of Eucalyptus calophylla (field resistant) and E. marginata (susceptible) when infected with Phytophtora cinnamoni. Physiol. Molec. Plant Pathol. 40: 315–332.
- Edrieva A.M., Georgieva I.D. 1980. Biochemical and histochemical investigations of α- and β-glucosidase activity in an infectious disease, a physiological disorder and in senescence of tobacco leaves. Physiol. Plant Pathol. 17: 237–243.
- Einhellig A.F. 1995. Mechanisms of action of allelochemicals in allelopathy. In: Allelopathy: Organisms, Processes and Applications. Inderjit, K.M.M. Dakshimini and F.A. Einhellig, ACS, Symposium Series 582, Washington DC: 96–117.
- Iiyama K., Bach-Tuyet Lam T., Stone B.A. 1994. Covalent cross-links in the cell wall. Plant Physiol. 104: 315–320.
- Jones D.H. 1984. Phenylalanine ammonia-lyase: Regulation of its induction, and its role in plant development. Phytochemistry 23: 1349–1359.
- Khan N.U., Vaidyanathan C.S. 1987. Cinnamate toxicity expression on phenylalanine ammonia-lyase activity, germination and growth of cucumber (Cucumis sativus) seedlings. Plant and Soil 97: 299–302.
- Kozłowska M., Krzywański Z. 1991. Lignification in red raspberry canes upon wounding and fungal infection. Acta Physiol. Plant. 13: 115–121.
- Lee T.T. 1980. Effects of phenolic substances on metabolism of exogenous indole-3-acetic acid in maize stems. Physiol. Plant. 50: 107–112.
- Macias F.A. 1995. Allelopathy in the search for natural herbicide models. In: allelopathy: Organisms, Processes and Applications. Inderjit, K.M.M. Dakshini and F.A. Einhellig, ACS Symposium Series 582, Washington DC: 310–330.
- Mauch F., Hadwiger L.A., Boller T. 1988. Antifungal hydrolases in pea tissue. Plant Physiol. 87: 325–333.
- Nicols E.J., Beckman J.M., Hadwiger L.A. 1980. Glycosidic enzyme activity in pea tissue and pea-Fusarium solani interaction. Plant Physiol. 66: 199–204.
- Politycka B. 1996. Peroxidase activity and lipid peroxidation in roots of cucumber seedlings influenced by derivatives of cinnamic and benzoic acids. Acta Physiol. Plant. 18: 365–370.
- Politycka B. 1997. Free and glucosylated phenolics, phenol β-glucosyltransferase activity and membrane permeability in cucumber roots affected by derivatives of cinnamic and benzoic acids. Acta Physiol. Plantarum 19: 311–317.
- Sasaki M., Yamamoto Y., Matsumoto H. 1996. Lignin deposition induced by aluminium in wheat (Triticum aestivum) roots. Physiol. Plant. 96: 193–198.
- Sato T., Kiuchi F., Sankawa U. 1982. Inhibition of phenylalanine ammonia-lyase by cinnamic acid derivatives and related compounds. Phytochemistry 21: 845–850.
- Segal R., Schlösser F. 1975. Role glucosidases in the membranelytic antifungal action of saponin. Arch. Microbiol. 104: 147–150.
- Swain T., Hillis W.E. 1959. The phenolic constituents of Prunus domestica. I. The quantitative analysis of phenolic constituents. J. Sci. Food Agric. 1: 63–68.
- Tabata M., Ikeda F., Hiroaka N., Konoshima M. 1976. Glucosylation of phenolic compounds by Datura innoxia suspension cultures. Phytochemistry 15:1225–1229.
- Tan K.S., Hoson T., Masuda Y. 1992a. Involvement of cell wall-bound diferulic acid in light-induced decrease in growth rate and cell wall extensibility of Oryza coleoptiles. Plant Cell Physiol. 33: 103–108.
- Tan K.S., Hoson T., Masuda Y., Kamisaka S. 1992b. Effect of ferulic and p-coumaric acids on Oryza Coleoptile growth and the mechanical properties of cell walls. J. Plant Physiol. 140: 460–465.
- Vaughn T.H., Andersen R.A., Kasperbauer M.J. 1975. β-D-glucosidase activity in developing leaves of Nicotiana tabacum. Phytochemistry 14: 61–62.
Typ dokumentu
Bibliografia
Identyfikatory
Identyfikator YADDA
bwmeta1.element.agro-article-fae31758-f4ed-484d-a309-6bac5f432638