303
Views
24
CrossRef citations to date
0
Altmetric
Original Article

Oxidative stress in growth hormone transgenic coho salmon with compressed lifespan – a model for addressing aging

, , &
Pages 1183-1189 | Received 01 Feb 2012, Accepted 24 May 2012, Published online: 26 Jun 2012

References

  • Du SJ, Gong Z, Fletcher GL, Shears MA, King MJ, Idler DR, . Growth enhancement in transgenic Atlantic salmon by the use of an “All Fish” chimeric growth hormone gene construct. Nat Biotech 1992;10:176–181.
  • Zhu Z, Xu K, Li G, Xei Y, He L. Biological effects of human growth hormone gene microinjected into the fertilized eggs of loach Misgurnus anguillicaudatus (Cantor). Kexue Tongbao 1986;81:988–990.
  • Devlin RH, Yesaki TY, Biagi CA, Donaldson EM, Swanson P, Chan W-K. Extraordinary salmon growth. Nature 1994;371: 209–210.
  • Devlin RH, Sundstr m F, Muir WM. Interface of biotechnology and ecology for environmental risk assessments of transgenic fish. Trends Biotechnol 2006;24:89–97.
  • Devlin R, Biagi C, Yesaki T. Growth, viability and genetic characteristics of GH transgenic coho salmon strains. Aquaculture 2004;236:607–632.
  • Muir WM, Howard RD. Possible ecological risks of transgenic organism release when transgenes affect mating success: Sexual selection and the Trojan gene hypothesis. Proc Nat Acad Sci USA 1999;96:13853–13856.
  • Muir WM, Howard RD. Fitness components and ecological risk of transgenic release: a model using Japanese Medaka (Oryzias latipes). Am Natural 2001;158:1–16.
  • L hmus M, Sundstr m LF, Bj rklund M, Devlin RH. Genotype-temperature interaction in the regulation of development, growth, and morphometrics in wild-type, and growth-hormone transgenic coho salmon. PLoS One 2010;5:e9980.
  • Devlin RH, Johnsson JI, Smailus DE, Biagi CA, J nsson E, Bj rnsson BT. Increased ability to compete for food by growth hormone-transgenic coho salmon Oncorhynchus kisutch (Walbaum). Aqua Res 1999;30:479–482.
  • Harman D. The free radical theory of aging. Antioxid Redox Signal 2003;5:557–561.
  • Pearl R (ed). The rate of living. New York: A. Knopf; 1928.
  • Austad SN. Vertebrate aging research 2006. Aging Cell 2007; 6:135–138.
  • Speakman JR, Selman C. The free-radical damage theory: accumulating evidence against a simple link of oxidative stress to ageing and lifespan. BioEssays 2011;33:255–259.
  • Dr ge W. Free radicals in the physiological control of cell function. Physiol Rev 2002;82:47–95.
  • Thannickal VJ, Fanburg BL. Reactive oxygen species in cell signaling. Am J Physiol Lung Cell Mol Physiol 2000;279: L1005–L1028.
  • Clancy D, Birdsall J. Flies, worms and the Free Radical Theory of ageing. Ageing Res Rev, in press. doi:10.1016/j.arr. 2012.03.011.
  • Driver AS, Kodavanti PRS, Mundy WR. Age-related changes in reactive oxygen species production in rat brain homogenates. Neurotoxicol Teratol 2000;22:175–181.
  • Levine RL, Stadtman ER. Oxidative modification of proteins during aging. Exp Gerontol 2001;36:1495–1502.
  • Sohal RS, Orr WC. The redox stress hypothesis of aging. Free Radic Biol Med 2012;52:539–555.
  • Bonawitz ND, Chatenay-Lapointe M, Pan Y, Shadel GS. Reduced TOR signaling extends chronological life span via increased respiration and upregulation of mitochondrial gene expression. Cell Metab 2007;5:265–277.
  • Schulz TJ, Zarse K, Voigt A, Urban N, Birringer M, Ristow M. Glucose restriction extends caenorhabditis elegans life span by inducing mitochondrial respiration and increasing oxidative stress. Cell Metab 2007;6:280–293.
  • Stevens ED, Sutterlin A, Cook T. Respiratory metabolism and swimming performance in growth hormone transgenic Atlantic salmon. Can J Fish Aquat Sci 1998;55:2028–2035.
  • Cook JT, McNiven MA, Sutterlin AM. Metabolic rate of pre-smolt growth-enhanced transgenic Atlantic salmon (Salmo salar). Aquaculture 2000;188:33–45.
  • Leggatt RA, Devlin RH, Farrell AP, Randall DJ. Oxygen uptake of growth hormone transgenic coho salmon during starvation and feeding. J Fish Biol 2003;62:1053–1066.
  • Rosa CE, Figueiredo MA, Lanes CFC, Almeida DV, Monserrat JM, Marins LF. Metabolic rate and reactive oxygen species production in different genotypes of GH-transgenic zebrafish. Comp Biochem Physiol Biochem Mol Biol 2008;149:209–214.
  • Halliwell B, Gutteridge JMC. Free radicals in biology and medicine. Third edition. Oxford: Oxford University Press; 1999.
  • Rosa CEd, Kuradomi RY, Almeida DV, Lannes CFC, Figueiredo MdA, Dytz AG, . GH overexpression modifies muscle expression of anti-oxidant enzymes and increases spinal curvature of old zebrafish. Exp Gerontol 2010;45:449–456.
  • Bartke A, Brown-Borg HM, Bode AM, Carlson J, Hunter WS, Bronson RT. Does growth hormone prevent or accelerate aging? Exp Gerontol 1998;33:675–687.
  • Carter CS, Ramsey MM, Sonntag WE. A critical analysis of the role of growth hormone and IGF-1 in aging and lifespan. Trends Genet 2002;18:295–301.
  • Bartke A. Minireview: role of the growth hormone/insulin-like growth factor system in mammalian aging. Endocrinology 2005;146:3718–3723.
  • Banks WA, Morley JE, Farr SA, Price TO, Ercal N, Vidaurre I, . Effects of a growth hormone-releasing hormone antagonist on telomerase activity, oxidative stress, longevity, and aging in mice. Proc Nat Acad Sci 2010;107:22272–22277.
  • Hsu CY, Chiu YC, Hsu WL, Chan YP. Age-Related Markers Assayed at Different Developmental Stages of the Annual Fish Nothobranchius rachovii. J Geront A Biol Sci Med Sci 2008;63:1267–1276.
  • Carney Almroth B, Johansson A, F rlin L, Sturve J. Early-age changes in oxidative stress in brown trout, Salmo trutta. Comp Biochem Physiol Biochem Mol Biol 2010;155:442–448.
  • Kishi S. Functional aging and gradual senescence in zebrafish. Annals NY Acad Sci 2004;1019:521–526.
  • Lemaire P, Viarengo A, Canesi L, Livingstone DR. Pro-oxidant and antioxidant processes in gas gland and other tissues of cod (Gadus morhua). J Comp Physiol B 1993;163:477–486.
  • F rlin L. Effects of clophen A50, 3-methylcolantrene, pregnelone-16-carbonitrile, and phenobarbital on the hepatic microsomal cytochrome P-450-dependent monooxygenase system in rainbow trout, Salmo gairdneri, of different age and sex. Toxicol Appl Pharmacol 1980;54:420–430.
  • Cribb AE, Leeder JS, Spielberg SP. Use of microplate reader in an assay of glutathione reductase using 5,5′-dithiobis(2-nitrobenzoic acid). Anal Biochem 1989;183:195–196.
  • Habig WH, Pabst MJ, Jakoby WB. Glutathione S-transferases. The first enzymatic step in mercapturic acid formation. J Biol Chem 1974;249:7130–7139.
  • Stephensen E, Sturve J, Forlin L. Effects of redox cycling compounds on glutathione content and activity of glutathione related enzymes in rainbow trout liver. Comp Biochem Physiol C 2002;133:435–442.
  • Sturve J, Stephensen E, F rlin L. Effects of redox cycling compounds on DT diaphorase activity in the liver of rainbow trout (Oncorhynchus mykiss). Comp Hepatol 2005;4:4–12.
  • Deutsch J. Glucose-6-phosphate dehydrogenase. dGlucose-6-phosphate:NADP + 1-oxidoreductase, EC 1.1.1.49. In: Bergmeyer HU (ed). Methods of enzymatic analysis. Weinheim, Germany: Verlag Chemie; 1987. p. 190–197.
  • Baker MA, Cerniglia GJ, Zaman A. Determination of glutathione and glutathione disulfide in biological samples. Anal Biochem 1990;190:360–365.
  • Vandeputte C, Guizon I, Genestie-Denis I, Vannier B, Lorenzon G. A microtiter plate assay for total glutathione and glutathione disulfide contents in cultured/isolated cells: performance study of a new miniaturized protocol. Cell Biol Toxicol 1994;10:415–421.
  • Reznick, AZ, Packer L. Oxidative damage to proteins. Spectrophotometric method for carbonyl assay. Methods Enzymol 1994;233:357–363.
  • Levine RL, Williams JA, Stadtman ER, Shacter E. Carbonyl assays for determination of oxidatively modified proteins. Methods Enzymol 1994;233:346–357.
  • Quinn G, Keough M. Experimental design and data analysis for biologists. Cambridge: Cambridge University Press; 2002.
  • Sohal RS, Mockett RJ, Orr WC. Mechanisms of aging: an appraisal of the oxidative stress hypothesis. Free Radic Biol Med 2002;33:575–586.
  • Orr WC, Sohal RS. The effects of catalase gene overexpression on life span and resistance to oxidative stress in transgenic Drosophila melanogaster. Arch Biochem Biophys 1992;297: 35–41.
  • Andziak B, O’Connor TP, Qi W, DeWaal EM, Pierce A, Chaudhuri AR, . High oxidative damage levels in the longest-living rodent, the naked mole-rat. Aging Cell 2006;5:463–471.
  • Barja G. Mitochondrial oxygen consumption and reactive oxygen species production are independently modulated: implications for aging studies. Rejuvenation Res 2007;10:215–224.
  • Echtay KS. Review article: Mitochondrial uncoupling proteins—What is their physiological role? Free Radic Biol Med 2007;43:1351–1371.
  • Sanz A, Pamplona R, Barja G. Is the mitochondrial free radical theory of aging intact? Antioxid Redox Signal 2006;8:582–599.
  • Mortelette H, Moisan C, S bert P, Belhomme M and Am rand A. Fish as a model in investigations about the relationship between oxygen consumption and hydroxyl radical production in permeabilized muscle fibers. Mitochondrion 2010;10:555–558.
  • Raven PA, Devlin RH, Higgs DA. Influence of dietary digestible energy content on growth, protein and energy utilization and body composition of growth hormone transgenic and non-transgenic coho salmon (Oncorhynchus kisutch). Aquaculture 2006;254:730–747.
  • Oakes JD, Higgs DA, Eales JG, Devlin RH. Influence of ration level on the growth performance and body composition of non-transgenic and growth-hormone-transgenic coho salmon (Oncorhynchus kisutch). Aquaculture 2007;265:309–324.
  • Higgs DA, Sutton JN, Kim H, Oakes JD, Smith J, Biagi C, . Influence of dietary concentrations of protein, lipid and carbohydrate on growth, protein and energy utilization, body composition, and plasma titres of growth hormone and insulin-like growth factor-1 in non-transgenic and growth hormone transgenic coho salmon, Oncorhynchus kisutch (Walbaum). Aquaculture 2009;286:127–137.
  • Dalle-Donne I, Rossi R, Giustarini D, Milzani A, Colombo R. Protein carbonyl groups as biomarkers of oxidative stress. Clin Chim Acta 2003;329:23–38.
  • Levine RL, Stadtman ER. Oxidative modification of proteins during aging. Exp Gerontol 2001;36:1495–1502.
  • Stadtman ER, Levine RL. Protein oxidation. Ann NY Acad Sci 2000;899:191–208.
  • Hughes KA, Reynolds RM. Evolutionary and mechanistic theories of aging. Annual Rev Entomol 2005;50:421–445.
  • Finkel T, Holbrook NJ. Oxidants, oxidative stress and the biology of ageing. Nature 2000;408:239.
  • Aksnes A, Njaa LR. Catalase, glutathione peroxidase and superoxide dismutase in different fish species. Comp Biochem Physiol Biochem Mol Biol 1981;69:893–896.
  • Junqueira VBC, . Aging and oxidative stress. Mol Aspects Med 2004;25:5.
  • Larsen PL. Aging and resistance to oxidative damage in caenorhabditis elegans. Proc Nat Acad Sci 1993;90:8905–8909.
  • Lopez-Torres M, Perez-Campo R, Rojas C, Cadenas S, Barja G. Maximum life span in vertebrates: relationship with liver antioxidant enzymes, glutathione system, ascorbate, urate, sensitivity to peroxidation, true malondialdehyde, in vivo H2O2, and basal and maximum aerobic capacity. Mech Ageing Dev 1993;70:177–199.
  • Sohal RS, Weindruch R. Oxidative stress, caloric restriction, and aging. Science 1996;273:59–63.
  • Jena BS, Nayak SB, Patnaik BK. Age-related effect of aluminium on the catalase activities of the brains of two species of poikilothermic vertebrates. Gerontology 2002;48:34.
  • Sohal RS, Arnold L, Orr WC. Effect of age on superoxide dismutase, catalase, glutathione reductase, inorganic peroxides, TBA-reactive material, GSH/GSSG, NADPH/NADP + and NADH/NAD+ in Drosophila melanogaster. Mech Ageing Dev 1990;56:223–235.
  • Otto D, Moon T. Endogenous antioxidant systems of two teleost fish, the rainbow trout and the black bullhead, and the effect of age. Fish Physiol Biochem 1996;15:349–358.
  • Rikans LE, Moore DR, Snowden CD. Sex-dependent differences in the effects of aging on antioxidant defense mechanisms of rat liver. BBA Gen Subj 1991;1074:195–200.
  • Beckman KB, Ames BN. The free radical theory of aging matures. Physiol Rev 1998;78:547–581.
  • AnAge. AnAge: The animal ageing & longevity database; http://genomics.senescence.info/species/. [cited January 2011].
  • Leggatt R, Brauner C, Iwama G, Devlin R. The glutathione antioxidant system is enhanced in growth hormone transgenic coho salmon (Oncorhynchus kisutch). J Comp Physiol Biochem Syst Environ Physiol 2007;177:413–422.
  • Corpas E, Harman SM, Blackman MR. human growth hormone and human aging. Endocr Rev 1993;14:20–39.
  • N rrelykke MR, Baron CP, Jessen F. Identification of carbonylated protein in frozen rainbow trout (Oncorhynchus mykiss) fillets and development of protein oxidation during frozen storage. J Agric Food Chem 2006;54:9437–9446.
  • Badii F, Howell NK. Changes in the texture and structure of cod and haddock fillets during frozen storage. Food Hydrocoll 2002;16:313–319.
  • Tuckey NPL, Forster ME, Gieseg SP. Lipid oxidation is inhibited by isoeugenol exposure in Chinook salmon (Oncorhynchus tshawytscha) fillets during storage at 15 °C. J Food Sci 2009;74:C333–C338.
  • Tuckey NPL, Forster ME, Gieseg SP. Effects of rested harvesting on muscle metabolite concentrations and k-values in Chinook salmon (Oncorhynchus tshawytscha) fillets during storage at 15 °C. J Food Sci 2010;75:C459–C464.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.