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Research Article

Detection of superoxide radicals in tomato plants exposed to salinity, drought, cold and heavy metal stress using CMC-G-SOD biosensor

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Pages 352-358 | Received 11 Jul 2012, Accepted 31 Jul 2012, Published online: 02 Oct 2012

References

  • Allen R. 1995. Dissection of oxidative stress tolerance using transgenic plants. Plants Pysiol. 107:1049–1054.
  • Asada K, Takahashi M. 1987. Production and scavenging of active oxygen in photosynthesis. In: Kyle DJ, Osmond CB, Arntzen CJ, et al., Eds.Photoinhibition. Amsterdam: Elsevier. pp. 227–287.
  • Auchere F, Rusnak F. 2002. “What is the ultimate fate of superoxide anion in vivo?”. J Biol Inorg Chem. 7:664–667.
  • Beck EG, Fettig S, Knake C, Gartig K, Bhattarai T. 2007. Specific and unspecific responses of plant to cold and drought stress. J Biosci. 32:501–510.
  • Beissenhirtz MK, Scheller FW, Viezzoli MS, Lisdat F. 2006. Engineered superoxide dismutase monomers for superoxide biosensor applications. Anal Chem. 78:928–935.
  • Bowler C, Van Montagu M, Inzé D. 1992. Superoxide dismutase and stress tolerance. Annu Rev Plant Physiol Plant Mol Biol. 43:83–116.
  • Carey FA, Sundberg RJ. 1984. Advanced Organic Chemistry, 2nd ed. New York: Plenum.
  • Conte C, Mutti I, Puglisi P, Ferrarini A, Regina GRG, Maestri E, Marmiroli N. 1998. DNA fingerprinting analysis by a PCR based method for monitoring the genotoxic effects of heavy metals pollution. Chemosphere. 37:2739–2749.
  • Cooper JM, Greenough KR, McNeil CJ. 1993. Direct electron transfer between immobilized cytochrome c and modified gold electrodes. J Electroanal Chem. 347:267–275.
  • Cuypers A, Vangronsveld J, Clijsters H. 1999. The chemical behavior of heavy metals plays a prominent role in the induction of oxidative stress. Free Rad Res. 31:839–843.
  • DalCorso G, Farinati S, Maistri S, Furini A. 2008. How plants cope with cadmium: staking all on metabolism and gene expression. J Integr Plant Biol. 50:1268–1280.
  • Dat J, Vandenabeele S, Vranová E, Van Montagu M, Inze D, Van Breusegem F. 2000. Dual action of the active oxygen species during plant stress responses. Cell Mol Life Sci. 57:779–795.
  • Dean RT, Fu S, Stocker R, Davies MJ. 1997. Biochemistry and pathology of radical-mediated protein oxidation. Biochem J. 324:1–18.
  • Del Río LA, Lyon DS, Olah I, Glick B, Salin ML. 1983. Immunocytochemical evidence for a peroxisomal localization of manganese superoxide dismutase in leaf protoplasts from a higher plant. Planta. 158:216–224.
  • Di J, Bi S, Zhang M. 2004. Third-generation superoxide anion sensor based on superoxide dismutase directly immobilized by sol-gel thin film on gold electrode. Biosensors Bioelectron. 19:1479–1486.
  • Di J, Peng S, Shen C, Gao Y, Tu Y. 2007. One-step method embedding superoxide dismutase and gold nanoparticles in silica sol-gel network in the presence of cysteine for construction of third- generation biosensor. Biosensors Bioelectron. 23:88–94.
  • Droillard MJ, Paulin A. 1990. Isozymes of superoxide dismutase in mitochondria and peroxisomes isolated from petals of carna- tion (Dianthus caryophyllus) during senescence. Plant Physiol. 94:1187–1192.
  • Ellen G, Loon JW, Tolsma K. 1990. Heavy metals in vegetables grown in the Netherlands and in domestic and imported fruits. Z Lebensm Unters Forsch. 190:34–39.
  • Finkelstein RR, Gampala SSl, Rock CD. 2002. Absisic acid signaling in seeds and seedlings. Plant Cell. 14:15–45.
  • Foye CH, Descourvieres P, Kunert KJ. 1994. Protection against oxygen radicals: an important defense mechanism studied in transgenic plants. Plant Cell Environ. 17:507–523.
  • Fridovich I. 1970. Quantitative aspects of production of superoxide anion radical by milk xanthine oxidase. J Biol Chem. 245:4035.
  • Fridovich I. 1972. Superoxide radicals and superoxide dismutase. Acc Chem Res. 5:321–326.
  • Fridovich I. 1995. Superoxide radicals and superoxide dismutases. Annu Rev Biochem. 64:97–112.
  • Fujita M, Tsuruta R, Kasaoka S, Fujimoto K, Tanaka R, Oda Y, et al. 2009. In vivo real-time measurement of superoxide anion radical with a novel electrochemical sensor. Free Radic Biol Med. 47:1039–1048.
  • Gonzales-Meler MA, Ribas-carbo M, Giles L, Siedow JN. 1999. The effect of growth and measurement temperature on the activity of the alternative respiratory pathway. Plant Physiol. 120:765–772.
  • Gratao PL, Polle A, Lea PJ, Azevedo RA. 2005. Making the life of heavy metal-stressed plants a little easier. Funct Plant Biol. 32:481–494.
  • Halliwell B, Gutteridge JMC. 1981. Formation of thiobarbituric-acid-reactive substance from deoxyribose in the presence of iron salts: the role of superoxide and hydroxyl radicals. FEBS Lett. 128:347.
  • Halliwell B, Gutteridge JMC. 1984. Oxygen toxicity, oxygen radicals, trasition metals and desease. Biochem J. 219:1–14.
  • Halliwell B, Gutteridge JMC. 1986. Oxygen free radicals and iron in relation to biology and medicine: some problems and concepts. Arch Biochem Biophys. 246:501–514.
  • Hammond-Kosack KE, Jones JDG. 1996. Resistance gene-dependent plant defense responses. Plant Cell. 8:1773–1791.
  • Hensley K, Floyd RA. 2002. Reactive oxygen species and protein oxidation in aging: a look back, a look ahead. Arch Biochem Biophys. 397:377–383.
  • Klug D, Rabani J, Fridovich I. 1972. A direct demonstration of the catalytic action of superoxide dismutase through the use of pulse radiolysis. J Biol Chem. 247:4839.
  • Kocabay O, Emregul E, Aras S, Emregul KC. 2012. Carboxymethylcellulose-gelatin superoxidase dismutase electrode for amperometric superoxide radical sensing. Bioprocess Biosyst Eng. 35:923–930.
  • Land EJ, Swallow AJ. 1971. One-electron reactions in biochemical systems as studied by pulse radiolysis. V. Cytochrome c. Arch Biochem Biophys. 145:365–372.
  • Lawrence GD, Sawyer DT. 1979. Potentiometric titrations and oxidation-reduction potentials of manganese and copper-zinc superoxide dismutases. Biochemistry. 18:3045.
  • Lisdat F, Ge B, Ehrentreich-Förster E, Reszka R, Scheller FW. 1999. Superoxide dismutase activity measurement using cytochrome c-Modified electrode. Anal Chem. 71:1359–1365.
  • Mahajan S, Tuteja N. 2005. Cold, salinity and drought stresses: an overview. Arch Biochem Biophys. 444:139–158.
  • Mannino S, Buratti S, Cosio MS, Pellegrini N. 1999. Evaluation of the ‘antioxidant power’ of olive oils based on a FIA system with amperometric detection. Analyst. 124:1115–1118.
  • Mc Kersie BD, Leshem YY. 1994. Salt Stress. Stress and Stress Coping in Cultivated Plants. Netherlands: Kluwer Academic Publishers, pp. 55–78.
  • McNeil CJ, Smith KA, Bellavite P, Bannister JV. 1989. Application of the electrochemistry of cytochrome c to the measurement of superoxide radical production. Free Radical Res Commun. 7:89.
  • Mittler R. 2002. Oxidative stress, antioxidants, and stress tolerance. Trends Plant Sci. 9:405–410.
  • Moscone D, Mascini M. 1988. Determination of superoxide dismutase activity with an electrochemical oxygen probe. Anal Chim Acta. 211:195–204.
  • Oshaka T, Shintane Y, Matsumoto F, Okajima T, Tokuda K. 1995. Mediated electron transfer of polyethylene oxide-modified superoxide dismutase by methyl viologen. Bioelectrochem Bioenerget. 37:73.
  • Paliyath G, Pinhero RG, Rao MV, Murr DP, Fletcher RA. 1997. Changes in activities of antioxidant enzymes and their relationship to genetic and paclobutrazol-induced chilling tolerance in maize seedlings. Plant Physiol. 114:695–704.
  • Parent B, Hachez C, Redondo E, Simonneau T, Chaumont F, Tardieu F. 2009. Drought and absisic acid effects on aquaporin content translate into changes in hydraulic conductivity and leaf growth rate: atrans-scale approach. Plant Phsiol. 149:2000–2012.
  • Pinzino C, Capocchi A, Galleschi L, Saviozzi F, Nanni B, Zandomeneghi M. 1999. Aging, free radicals, and antioxidants in wheat seeds. J Agric Food Chem. 47:1333–1339.
  • Polle A. 2001. Dissecting the superoxide dismutase-ascorbate peroxidase-glutathione pathway in chloroplasts by metabolic modeling. Computer simulations as a step towards flux analaysis. Plant Physiol. 126:445–462.
  • Prasad K, Kalra J, Bhardwaj B. 1989. Increased chemiluminescence of polymorphonuclear leucocytes in dogs with volume overload heart failure. Br J Exp Pathol. 70:463.
  • Prasad KVSK, ParadhaSaradhi P, Sharmila P. 1999. Concerted action of antioxidant enzymes and curtailed growth under zinc toxicity in Brassica juncea. Environ Exp Bot. 42:1–10.
  • Prasad TK, Anderson MD, Stewart CR. 1995. Localization and characterization of peroxidases in the mitocindria of chilling-acclimated maize seedlings. Plant Physiol. 108:1597–1605.
  • Raghavendra AS, Gimono J, Van Deynze A, Walia H, Blumwald E. 2010. ABA perception and signaling. Trends Plant Sci. 15:395–401.
  • Rigo A, Viglino P, Rotilio G. 1992. Polarographic determination of superoxide dismutase. Anal Biochem. 68:1–8.
  • Rotilio G, Bray RC, Fielden EM. 1972. A pulse radiolysis study of superoxide dismutase. Biochim Biophys Acta. 268:605.
  • Salin ML, Bridges SM. 1980. Isolation and characterization of an iron‐containing superoxide dismutase from a eucaryote, Brassica campestris. Arch Biochem Biophys. 201:369–374.
  • Scandalios JG. 1993. Oxygen stress and superoxide dismutases. Plant Physiol. 101:7–12.
  • Smirnoff N. 1993. The role of active oxygen in response of plants to water deficit and dessication. New Phytologist. 125:27–58.
  • Tammeveski K, Tenno TT, Mashirin AA, Hillhouse EW, Manning P, McNeil CJ. 1998a. Superoxide electrode based on covalently immobilized cytochrome c: modelling studies. Free Radical Res Commun. 25:973–978.
  • Tammeveski K, Tenno TT, Mashirin AA, Hillhouse EW, Manning P, McNeil CJ. 1998b. Superoxide electrode based on covalently immobilized cytochrome c: modelling studies. Free Radic Biol Med. 25:973.
  • Tanaka K, Muto Y. 1992. Amperometric determination of superoxide anions generated from phytoplankton Chattonella antique. Bioelectrochem Bioenerg. 29:143.
  • Tian T, Wang H, Abdallah AM, Prinyawiwatkul W, Xu Z. 2011. Red and White wines inhibit cholesterol oxidation induced by free radicals. J Agr Food Chem. 59:6453–6458.
  • Van Camp W, Willekens H, Bowler C, Van Montagu M, Inze D, Langebartels C, Sandermann H. 1994. Elevated levels of superoxide dismutase protect transgenic plants against ozone damage. Bio Technol. 12:165–168.
  • Van Lente F. 1993. Free radicals. Anal Chem. 65:374–377.
  • Verma OP, Santoshi US, Srivastava HK. 2003. Governance of gene action and combining ability for certain grain quality traits in three diverse rice (Oryza sativa L.) growing ecosystems. J Sustain Agr. 22:63–78.
  • Verma S, Dubey RS. 2003. Lead toxicity induces lipid peroxidation and alters the activites of antioxidant enzymes in growing rice plants. Plant Sci. 164:645–655.
  • Wang Y, Wu Y, Wang J, Di J. 2009. Disposable superoxide anion biosensor based on superoxide dismutase entrapped in silica sol-gel matrix at gold nanoparticles modified ITO electrode. Bioprocess Biosyst Eng. 32:531–536.
  • Willekens H, Chamnongpol S, Davey M, Schrauder M, Langebartels C, Van Montagu M, et al. 1997. Catalase is a sink for H2O2 and is indispensable for stress defence in C-3 plants. EMBOJ. 16:4806–4816.
  • Youdim KA, Joseph JA. 2001. A possible emerging role of phytochemicals in improving age-related neurological dysfunctions: a multiplicity of effects. Free Radical Biol Med. 30:583–594.
  • Zhu JK. 2001. Cell signaling under salt, water and cold stresses. Curr Opin Plant Biol. 4:401–406.

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