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2014 | 36 | 12 |

Tytuł artykułu

Olive (Olea europaea L.) freezing tolerance related to antioxidant enzymes activity during cold acclimation and non acclimation

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
The changes in the antioxidant enzymes activity, total protein and proline content and their correlations with freezing tolerance (FT) (expressed as LT₅₀) were investigated at 11 different olive cultivars at cold-acclimation (CA, in February) and non-acclimation (NA, in August) stages. Leaf samples were collected from each cultivar and were divided into two groups. The first group was immediately frozen in liquid nitrogen for further biochemical analysis. The second ones was subjected to different freezing temperatures (-5, -10, -15 and -20°C) for 10 h, in order to determine their FT. The unfrozen control samples were kept at 4°C. The results showed that Fishomi, Mission and Shengeh were the most freezing tolerant among other cultivars. In contrast, Zard, Manzanilla and Amigdalolia were the most sensitive ones. The cold acclimation enhanced the activities of superoxide dismutase (SOD), peroxidase (POD), ascorbate peroxidase (APX), catalase (CAT), polyphenol oxidase (PPO) and total protein content. However, proline content and phenylalanine ammonia-lyase (PAL) activity did not change or even decreased slightly at CA stage, compare to those samples at NA stage. It was found that LT₅₀ to be closely correlated to POD, CAT, and PPO activity at CA and NA stages. Overall, higher leaf POD, CAT, and PPO activity could be used as important selection criteria in screening tolerant olive cultivars for cold zone climatic.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

36

Numer

12

Opis fizyczny

p.3231-3241,fig.,ref.

Twórcy

  • Department of Horticultural Sciences, Faculty of Agriculture Sciences, University of Guilan, Rasht, Iran
  • Department of Horticultural Sciences, Faculty of Agriculture Sciences, University of Guilan, Rasht, Iran
  • Department of Horticultural Sciences, Faculty of Agriculture Sciences, University of Guilan, Rasht, Iran
autor
  • Department of Biotechnology, Faculty of Agriculture Sciences, University of Guilan, Rasht, Iran

Bibliografia

  • Asl Moshtaghi E, Shahsavar AR, Taslimpour MR (2009) Ionic leakage as indicators of cold hardiness in Olive (Olea europaea L.). World Appl Sci J 7:1308–1310
  • Assis JS, Maldonado R, Munoz T, Escribano MI, Merodio C (2001) Effect of high carbon dioxide concentration on PAL activity and phenolic contents in ripening cherimoya fruit. Postharvest Biol Technol 23:33–39
  • Azzarello E, Mugnai S, Pandolfi C, Masi E, Marone E, Mancuso S (2009) Comparing image (fractal analysis) and electrochemical (impedance spectroscopy and electrolyte leakage) techniques for the assessment of the freezing tolerance in olive. Trees 23:159–167
  • Barranco D, Ruiz N, Campo MG (2005) Frost tolerance of eight olive cultivars. Hortic Sci 40:558–560
  • Bartolozzi F, Fontanazza G (1999) Assessment of frost tolerance in olive (Olea europaea L.). Sci Hortic 81:309–319
  • Bartolozzi F, Rocchi P, Camerini F, Fontanazza G (1999) Changes of biochemical parameters in olive (Olea europaea L.) leaves during an entire vegetative season, and their correlation with frost resistance. Acta Hortic 474:435–440
  • Bartolozzi F, Mencuccini M, Fontanazza G (2001) Enhancement of frost tolerance in olive shoots in vitro by cold acclimation and sucrose increase in the culture medium. Plant Cell Tissue Organ Cult 67:299–302
  • Bates LS, Waldren RP, Teare ID (1973) Rapid determination of free proline for water stress studies. Plant Soil 39:205–207
  • Beauchamp C, Fridovich J (1971) Superoxide dismutase: improved assays and an assay applicable to acrylamide gels. Anal Biochem 44:276–287
  • Beers PF, Sizer IW (1952) A spectrophotometric assay measuring the breakdown of hydrogen peroxide by catalase. J Biol Chem 195:133–138
  • Bradford MM (1976) A rapid and sensitive method for quantitation of microgram quantities of protein utilizing the principle of protein–dye binding. Anal Biochem 72:248–252
  • Cansev A, Gulen H, Eris A (2009) Cold-hardiness of olive (Olea europaea L.) cultivars in cold-acclimated and non-acclimated stages: seasonal alteration of antioxidative enzymes and dehydrin-like proteins. J Agric Sci 147:51–61
  • Chance B, Maehly SK (1955) Assay of catalase and peroxidase. Methods Enzymol 2:764–775
  • Chen HH, Li PH (1982) Potato cold acclimation. In: Li PH, Sakai A (eds) Plant cold hardiness and freezing stress, vol 2. Academic Press, New York, pp 5–22
  • Cyril J, Powell GL, Duncan RR, Baird WV (2002) Changes in membrane polar lipid fatty acids of seashore paspalum in response to low temperature exposure. Crop Sci 42:2031–2037
  • Deshmukh PS, Sairam RK, Shukla DK (1991) Measurement of ion leakage as a screening technique for drought resistance in wheat genotypes. Indian J Plant Physiol 34:89–91
  • Eris A, Gulen H, Barut E, Cansev A (2007) Annual patterns of total soluble sugars and proteins related to cold-hardiness in olive (Olea europaea L. ‘Gemlik’). J Hortic Sci Biotechnol 82:597–604
  • Gomez del Campo M, Barranco D (2005) Field evaluation of frost tolerance in 10 olive cultivars. Plant Gen Res 3:385–390
  • Gulen H, Cansev A, Eris A (2009) Cold hardiness of olive (Olea europaea L.) cultivars in cold-acclimated and non-acclimated stages: seasonal alteration of soluble sugars and phospholipids. J Agric Sci 147:459–467
  • Guo FX, Zhang MX, Chen Y, Zhang WH, Xu SJ, Wang JH, An LZ (2006) Relation of several antioxidant enzymes to rapid freezing resistance in suspension cultures cells from Alpine Chorispor abungeana. Cryobiology 52:241–250
  • Guy CL (1990) Cold acclimation and freezing stress tolerance: role of protein metabolism. Annu Rev Plant Physiol Plant Mol Biol 41:187–223
  • Lee SP, Chen THH (1992) Molecular biology of plant cold hardiness development. In: Li PH, Christersson L (eds) Advances in plant cold hardiness. CRC Press, Boca Raton, pp 1–30
  • Lee DH, Lee CB (2000) Chilling stress-induced changes of antioxidant enzymes in the leaves of cucumber: in gel enzyme activity assays. Plant Sci 159:75–85
  • Levitt J (1980) Responses of plants to environmental stresses. Academic Press, New York
  • Lim CC, Arora R, Townsend EC (1998) Comparing Gompertz and Richards functions to estimate freezing injury in jury in Rhododendron using electrolyte leakage. J Amer Soc Hortic Sci 123:246–252
  • Lin SZ, Zhang ZY, Liu WF, Lin YZ, Zhang Q, Zhu BQ (2005) Role of glucose-6-phosphate dehydrogenase in freezing—induced freezing resistance of Populus suaveolens. J Plant Physiol Mol Biol 35:34–40
  • Luh BS, Phithakpol B (1972) Characteristics of polyphenoloxidase related to browning in cling peaches. J Food Sci 37:264–268
  • Luo L, Lin SZ, Zheng HQ, Lei Y, Zhang Q, Zhang ZY (2007) The role of antioxidant system in freezing acclimation-induced freezing resistance of Populus suaveolens cuttings. For Stud China 9:107–113
  • Mancuso S (2000) Electrical resistance changes during exposure to low temperature measure chilling and freezing tolerance in olive tree (Olea europaea L.) plants. Plant Cell Environ 23:291–299
  • Martin GC, Denney JO, Ketchie DO, Osgood JW, Connel JH, Sibbet GS, Kammereck R, Krueger WH, Nour GA (1993) Freeze damage and cold hardiness in olive: findings from the 1990 freeze. Calif Agric 47:1–12
  • Mayer AM (2006) Polyphenol oxidases in plants and fungi: going places? Rev Phytochem 67:2318–2331
  • McKersie BD, Bowley SR, Jones KS (1999) Winter survival of transgenic alfalfa overexpressing superoxide dismutase. Plant Physiol 119:839–847
  • Miyake C, Yakota A (2000) Determination of the rate of photoreduction of O₂ in the water-water cycle in water melon leaves and enhancement of the rate by the limitation of photosynthesis. Plant Cell Physiol 4:335–343
  • Nakano Y, Asada K (1980) Spinach chloroplasts scavenge hydrogen peroxide on illumination. Plant Cell Physiol 21:1295–1307
  • Ortega-García F, Peragón J (2009) The response of phenylalanine ammonia-lyase, polyphenol oxidase and phenols to cold stress in the olive tree (Olea europaea L. cv. Picual). J Sci Food Agric 89:1565–1573
  • Palliotti A, Bongi G (1996) Freezing injury in the olive leaf and effects of mefluidide treatment. J Hortic Sci 71:57–63
  • Roselli G, Venora G (1990) Relationship between stomatal size and winter hardiness in the olive. Acta Hortic 286:89–92
  • Roselli G, Benelli G, Morelli D (1989) Relationship between stomatal density and winter hardiness in olive (Olea europaea L.). J Hortic Sci 64:199–203
  • Roselli G, La Porta N, Morelli D (1992) Valutazioni del germoplasma di olivo per la tolleranza a stress da freddo. Anti Convegno Germoplasma Frutticolo 9:107–112
  • Solecka D, Kacperska A (2003) Phenylpropanoid deficiency affects the course of plant acclimation to cold. Physiol Plant 119:253–262
  • Sudhakar C, Lakshmi A, Giridarakumar S (2001) Changes in the antioxidant enzyme efficacy in two high yielding genotypes of mulberry (Morus alba L.) under NaCl salinity. Plant Sci 161:613–619
  • Tandy NE, Giolio RTD, Richardson CJ (1989) Assay and electrophoresis of superoxide dismutase from red spruce (Picea rubens Sarg.), Lobloly pine (Pinu staeda L.) and Scots pine (Pinus sylvestris L.). Plant Physiol l90:742–748
  • Tao DL, Jin YH (1992) Organic free radicals and free-radical scavengers in overwintering conifer needles. Sci Silvae Sin 28:194–197
  • Thomashow MF (1999) Plant cold acclimation: freezing tolerance genes and regulatory mechanisms. Annu Rev Plant Physiol Plant Mol Biol 50:571–599
  • Wise RR (1995) Chilling-enhanced photooxidation: the production, action and study of reactive oxygen species produced during chilling in the light. Photosynth Res 45:79–97
  • Wisniewski M, Carole B, Gusta LV (2003) An overview of cold hardiness in woody plants: seeing the forest through the trees. Hortic sci 38:952–959
  • Xin Z, Li P (1993) Relationship between proline and abscisic acid in the induction of chilling tolerance in maize suspension-cultured cells. Plant Physiol 103:607–613
  • Zhang X, Ervin EH (2008) Metabolic defense responses of bermudagrass during acclimation to freezing stress—a review. Acta Hortic 783:181–194
  • Zhou BY, Li YB, Chen JZ, Ji ZL, Hu ZQ (2002) Effects of low temperature stress and ABA on flower formation and endogenous hormone of litchi. Acta Hortic Sin 29:577–578

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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