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2008 | 30 | 6 |

Tytuł artykułu

Peroxidase and catalase changes during in vitro adventitious shoot organogenesis from hypocotyls of Albizia odoratissima L.f. (Benth)

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Hypocotyls of Albizia odoratissima cultured on shoot induction medium (MS medium with 7.5 lMBAP and 0.5 μM NAA) showed adventitious shoot organogenesis under light with 16 h photoperiod. Similar cultures under total darkness produced non-morphogenic calli. The changes in the specific peroxidase and catalase activity, total protein content and acidic isoperoxidase pattern were compared between the culture showing shoot organogenesis and culture producing non-morphogenic calli. It was found that in vitro shoot bud differentiation is accompanied by an increase of the specific activities of peroxidase and catalase in culture kept under light. In parallel with the above changes the total protein content reached to the maximum level and also a new isoperoxidase (P10) expressed on the 21st day in cultures kept under light. Conversely, culture producing non-morphogenic calli underwent a reverse change in specific peroxidase activity. This change in antioxidant enzyme activities corresponds to the histological observation of shoot bud differentiation in cultures kept under light.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

30

Numer

6

Opis fizyczny

p.825-832,fig.,ref.

Twórcy

autor
  • Department of Plant Sciences, School of Biological Sciences, Madurai Kamaraj University, 625 021 Madurai, Tamil Nadu, India
autor
  • Department of Plant Sciences, School of Biological Sciences, Madurai Kamaraj University, 625 021 Madurai, Tamil Nadu, India

Bibliografia

  • Alscher RG, Donahue J, Cramer CL (1997) Reactive oxygen species and antioxidant: relationships in green cells. Physiol Plant 100:224–233
  • Arezki O, Boxus P, Kevers C, Gaspar T (2001) Changes in peroxidase activity, and level of phenolic compounds during light-induced plantlet regeneration from Eucalyptus camaldulensis Dehn. Nodes in vitro. Plant Growth Regul 33:215–219
  • Arnaldos TL, Ferrer MA, Antonia A, Garcia C, Munoz R (2002) Changes in peroxidase activity and isoperoxidase pattern during strawberry (Fragaria x ananassa) callus development. J Plant Physiol 159:429–435
  • Bowler C, Van Montagu M, Inze D (1992) Superoxide dismutase and stress tolerance. Annu Rev Plant Physiol Plant Mol Biol 43:83–116
  • Cassells AC, Curry RF (2001) Oxidative stress and physiological, epigenetic and genetic variability in plant tissue culture: implications for micropropagators and genetic engineers. Plant Cell Tissue Org Cult 64:145–157
  • Chance B, Maehly AC (1955) Assay of catalases and peroxidases. In: Colowick SP, Kaplan NO (eds) Methods in enzymology 2. Academic Press, New York, pp 764–775
  • Chen J, Ziv M (2001) The effect of ancymidider on hyperhydricity, regeneration, starch and antioxidant enzymatic activities in liquid-cultured Narcissus. Plant Cell Rep 20:22–27
  • Chory J, Reinecke D, Sim S, Washburn T, Brenner M (1994) A role for cytokinins in de-etiolation in Arabidopsis: det mutatnts have an altered response to cytokinins. Plant Physiol 104: 339–347
  • Cooper JB, Heuser JE, Varner JE (1994) 3, 4-Dehydroproline inhibits cell wall assembly and cell division in tobacco protoplasts. Plant Physiol 104:747–754
  • Cui K, Xing G, Liu X, Xing G, Wang Y (1999) Effect of hydrogen peroxide on somatic emnbryogenesis of Lycuin barbarum L. Plant Sci 146:9–16
  • Cutler A, Saleem M, Wang H (1991) Cereal protoplast recalcitrance. In vitro Cell Dev Biol 27:104–111
  • Davis BJ (1964) Disc electrophoresis II. Method and application to human serum proteins. Ann NY Acad Sci USA 121:404–427
  • De Marco A, Roubelakis-Angelakis KA (1996) Hydrogen peroxidase plays a bivalent role in the regeneration of protoplasts. J Plant Physiol 149:109–114
  • De Souza IRP, MacAdam JW (1998) A transient increase in apoplastic peroxidase activity precedes decrease in elongation rate of B73 maize (Zea mays) leaf blades. Physiol Plant 104: 556–562
  • Druart Ph, Kevers C, Boxus Ph, Gaspar Th (1982) In vitro promotion of root formation by apple shoots through darkness effect on endogenous phenols and peroxidases. Z Pflanzenphysiol 108: 429–436
  • Epstein L, Lamport DTA (1984) An intramolecular linkage involving isodityrosine in extensin. Phytochemistry 23:1241–1246
  • Gaspar T, Penelm C, Castillo FJ, Greppin H (1985) A two-step control of basic and acidic peroxidases and its significance for growth and development. Physiol Plant 64:418–423
  • Gaspar Th, Moncousin Ch, Greppin H (1990) The place and role of exogenous and endogenous auxin in adventitious root formation. In: Millet B, Greppin H (eds) Intra- and intercellular communications in plants. INRA, Paris, pp 7–13
  • Goldberg R, Catesson AM, Czaninski Y (1983) Some properties of syringaldazine oxidase, a peroxidase specifically involved in the lignification processes. Z.Pflanzen Physiol 110:265–277
  • Gomez KA, Gomez AA (1984) Statistical procedure for agricultural research. Wiley, New York
  • Gupta SD, Datta S (2003/2004) Antioxidant enzyme activities during in vitro morphogenesis of gladiolus and the effect of application of antioxidant on plant regeneration. Biol Plant 47:179–183
  • Halliday KJ, Frankhauser C (2003) Tansley review phytochromehormonal signaling networks. New Phytol 157:449–463
  • Halliwell B (1974) Superoxide dismutase, catalase and glutathione peroxidase: solutions to the problem of living with oxygen. New Phytol 73:1075–1086
  • Hiraga S, Sasaki K, Ito H, Ohashi Y, Matsui H (2001) A large family of class III plant peroxidases. Plant Cell Physiol 42:462–468
  • Hoson T, Wakabayashi K, Masuda Y (1995) Inhibition of the breakdown of xyloglucans in azuki bean epicotyls by concanavalin A. Plant Cell Physiol 36:897–902
  • Iiyama K, Lam TB-T, Stone BA (1994) Covalent cross-links in the cell wall. Plant Physiol 104:315–320
  • Jabs T, Tschope M, Colling C, Hahlbrock K, Scheel D (1997) Elicitor-stimulated ion fluxes and superoxide from the oxidative burst are essential component in triggering defense gene activation and phytoalexin synthesis in parsley. Proc Natl Acad Sci USA 94:4800–4805
  • Kagan VE, Serbinova EA, Packer L (1990) Generation and recycling of radicals from phenolic antioxidants. Arch Biochem Biophys 280:33–39
  • Kevers C, Gaspar T (1985) Soluble, membrane and wall peroxidases, phenylalanine ammonia-lyase and lignin changes in relation to vitrification of carnation tissues cultured in vitro. J Plant Physiol 118:41–48
  • Konieczny R, Libik M, Tuleja M, Niewiadomska E, Miszalski Z (2008) Oxidative events during in vitro regeneration of sunflower. Acta Physiol Plant 30:71–79
  • Lamb C, Dixon R (1997) The oxidative burst in plant disease resistance. Ann Rev Plant Physiol Plant Mol Biol 48:251–275
  • Lee TT, Starrat AN, Jevnikar JJ, Stoesse A (1980) New phenolic inhibitors of the peroxidase-catalyzed oxidation of indole-3-acetic acid. Phytochem 19:2277–2280
  • Libik M, Konieczny R, Pater B, Slesak I, Miszalski Z (2005) Differences in the activities of some antioxidant enzymes and in H2O2 content during rhizogenesis and somatic embryogenesis in callus cultures of the ice plant. Plant Cell Rep 23:834–841
  • Lopez-Serrano M, Fernandez MD, Pomar F, Pedreno MA, Ros Barcelo A (2004) Zinnia elegans uses the same peroxidase isoenzyme complement for cell wall lignification in both singlecell tracheary elements and xylem vessels. J Exp Bot 55: 423–431
  • Lowry OH, Rosebrough NJ, Farr AL, Randall RJ (1951) Protein measurement with the folin phenol reagent. J Biol Chem 193: 265–275
  • Murashige T, Skoog F (1962) A revised medium for rapid growth and bioassays with tobacco tissue cultures. Physiol Plant 14:473–497
  • Ostergaard L, Teilum K, Mirza O, Mattsson O, Petersen M, Welinder KG, Mundy J, Gajhede M, Henriksen A (2000) Arabidopsis ATP A2 peroxidase. Expression and high-resolution structure of a plant peroxidase with implications for lignification. Plant Mol Biol 44:231–243
  • Papadakis AK, Siminis CI, Roubelakis-Angelakis KA (2001) Reduced activity of antioxidant machinery is correlated with suppression of totipotency in plant protoplasts. Plant Physiol 126:434–444
  • Price AH, Atherton NM, Hendry GAF (1989) Plants under droughtstress generate activated oxygen. Free Radic Res Commun 8:61–66
  • Quiroga M, Guerrero C, Botella MA, Barcelo A, Amaya I, Medina MI, Alonsa FJ, de Forchetti SM, Tigier H, Valpuesta V (2000) A tomato peroxidase involved in the synthesis of lignin and suberin. Plant Physiol 122:1119–1127
  • Racchi ML, Terragna C (1993) Catalase isozymes are useful markers of differentiation in maize tissue cultures. Plant Sci 93:195–202
  • Ros Barcelo A, Munoz R (1992) Peroxidases: their role in the control of plant cell growth. In: Penel C, Th Gaspar, Greppin H (eds) Plant peroxidases 1980–1990. Topics and detailed literature on molecular, biochemical and physiological aspects. University of Geneva, Switzerland, pp 71–89
  • Ros Barcelo A, Pedreno MA, Munoz R, Sabater F (1988) Lupin peroxidase. II. Binding of acidic isoperoxidases to cell walls. Physiol Plant 73:238–244
  • Ros Barcelo A, Pedreno MA, Munoz R, Sabater F (1989) Physiological significance of the binding of acidic isoperoxidases to cell walls of lupin. Physiol Plant 75:267–274
  • Roubelakis-Angelakis KA (1993) An assessment of possible factors contributing to recalcitrance of plant protoplasts. In: Roubelakis-Angelakis KA, Tran Thanh Van K (eds) Morphogenesis in plants: molecular approaches. Plenum, New York, pp 201–220
  • Roupakias DG, McMillin DE, Scandalios JC (1980) Chromosomal location of the catalase structural genes in Zea mays using B-A translocations. Theor Appl Genet 58:211–218
  • Sato Y, Demura T, Yamawaki K, Inoue Y, Sato S, Sugiyama M, Fukuda H (2006) Isolation and characterization of a novel peroxidase gene ZPO-C whose expression and function are closely associated with lignification during tracheary element differentiation. Plant Cell Physiol 47:493–503
  • Scandalios JC (1987) The antioxidant enzyme genes cat and sod of maize: regulation, functional significance, and molecular biology. In: Rattazzi MC, Scandalios JC, Whitt GS (eds) Isozymes. Current topics in biological and medical research, molecular and cellular biology, vol 14. Alan R.Liss, New York, pp 19–44
  • Scandalios JG (1990) Response of plant antioxidant defense genes. In: Scandalios JG, Wright T (eds) Genomic responses to environmental stress. Academic, New York, pp 1–41
  • Scandalios JG (1993) Oxygen stress and superoxide dismutases. Plant Physiol 101:7–12
  • Shinshi H, Noguchi M (1975) Relationship between peroxidase, IAA oxidase and polyphenol oxidase. Phytochem 14:1255–1258
  • Takahama U, Yoshitama K (1998) Hydroxycinnamic acid esters enhance peroxidase-dependent oxidation of 3, 4-dihydroxyphenylamine. Differences in the enhancement among the esters. J Plant Res 111:97–100

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Typ dokumentu

Bibliografia

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