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Metabolic responses to food deprivation and refeeding in juveniles of Rutilus rutilus (Teleostei: Cyprinidae)

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Effect of food deprivation and refeeding on metabolic parameters were studied in juvenile Rutilus rutilus, weighing 280–460 mg. Tissue hydration increased with the length of the starvation period, reaching a new steady state after 4–5 weeks. Total protein concentration remained constant at about 60% of dry body mass. The concentration of glycogen decreased during food deprivation, a new steady state being reached at about 30% of control values after 4 weeks. Refeeding caused a dramatic increase of glycogen concentration which exceeded the value in fed controls by 6- to 9-fold. This is seen as a tactic for rapid storage of food energy, to be used later for the synthesis of body materials. With respect to their responses to food deprivation the 12 enzymes investigated formed four groups: (1) activity unaffected by food deprivation or refeeding (COX, THIOL, CK, GOT); (2) activity drops to about 60% of control value during the initial phase of food deprivation but remains constant thereafter (PK, LDH, Pase); (3) slow but continuous decrease in activity during the whole period of starvation, i.e. up to 7 weeks (PFK, OGDH, CS, FBPase); (4) activity increases during food deprivation, decreases again upon refeeding (GPT). A model is discussed which distinguishes between four phases in the general response of young fish to food deprivation and refeeding: stress, transition, adaptation, and recovery.

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References cited

  • Beardall, C.H. & I.A. Johnston. 1985a. The ultrastructure of myotomal muscles of the saithe Pollachius virens L. following starvation and refeeding. Eur. J. Cell Biol. 39: 105–111.

    Google Scholar 

  • Beardall, C.H. & I.A. Johnston. 1985b. Lysosomal enzyme activities in muscle following starvation and refeeding in the saithe Pollachius virens L. Eur. J. Cell Biol. 39: 112–117.

    PubMed  Google Scholar 

  • Black, D. & R.M. Love. 1986. The sequential mobilization and restoration of energy reserves in tissues of Atlantic cod during starvation and refeeding. J. Comp. Physiol. B 156: 469–479.

    Google Scholar 

  • Blaxter, J.H.S. 1988. Pattern and variety in development. pp. 1–58. In: W.S. Hoar & D.J. Randall (ed.) Fish Physiology, vol. 11A, Academic Press, New York.

  • Cowey, C.B. & J.R. Sargent. 1979. Nutrition. pp. 1–69. In: W.S. Hoar, D.J. Randall & J.R. Brett (ed.) Fish Physiology, vol. 8, Academic Press, New York.

  • Gadomski, D.M. & J.H. Petersen. 1988. Effects of food deprivation on the larvae of two flatfishes. Mar. Ecol. Progr. Ser. 44: 103–111.

    Google Scholar 

  • Hansen, J.M. & S. Abraham. 1989. Compartmentation of gluconeogenesis in the fasted eel (Anguilla anguilla). Comp. Biochem. Physiol. 92B: 697–703.

    Google Scholar 

  • Hinterleitner, S., V. Platzer & W. Wieser. 1987. Development of the activities of oxidative, glycolytic and muscle enzymes during early life in three families of freshwater fish. J. Fish Biol. 30: 315–326.

    Google Scholar 

  • Hinterleitner, S., J. Thurner-Flür, W. Wieser & M. El-Fiky. 1989. Profiles of enzyme activity in larvae of two cyprinid species with contrasting life styles (Cyprinidae; Teleostei). J. Fish Biol. 35: 709–718.

    Google Scholar 

  • Huse, I. & A.B. Skiftesvik. 1985. Qualitative and quantitative behaviour studies in starving and feeding turbot (Scophthalmus maximus L.) larvae. Maricult. Comm. Int. Counc. Explor. Sea, Copenhagen, Pap. F: 38.

  • Ince, B.W. & A. Thorpe. 1976. The effects of starvation and force-feeding on the metabolism of the Northern pike, Esox lucius L. J. Fish Biol. 8: 79–88.

    Google Scholar 

  • Itazawa, Y. & S. Oikawa. 1983. Metabolic rates in excised tissues of carp. Experientia 39: 160–161.

    Google Scholar 

  • Ivlev, V.S. 1961. Experimental ecology of the feeding of fishes. Yale University Press, New Haven. 302 pp.

    Google Scholar 

  • Kamra, S.K. 1966. Effect of starvation and refeeding on some liver and blood constituents of Atlantic cod (Gadus morhua L.). J. Fish. Res. Board Can. 23: 975–982.

    Google Scholar 

  • Lim, A.L.L. & Y.K. Ip. 1989. Effects of fasting on glycogen metabolism and activities of glycolytic and gluconeogenic enzymes in the mudskipper Boleophthalmus boddaerti. J. Fish Biol. 34: 349–367.

    Google Scholar 

  • Love, M. 1970. The chemical biology of fishes. Academic Press, London. 547 pp.

    Google Scholar 

  • Lowery, M.S., S.J. Roberts & G.N. Somero. 1987. Effects of starvation on the activities and localization of glycolytic enzymes in the white muscle of the barred sand bass Paralabrax nebulifer. Physiol. Zool. 60: 538–549.

    Google Scholar 

  • Lowery, M.S. & G.N. Somero. 1990. Starvation effects on protein synthesis in red and white muscle of the barred sand bass, Paralabrax nebulifer. Physiol. Zool. 63: 630–648.

    Google Scholar 

  • Miglavs, I. & M. Jobling. 1989. Effects of feeding regime on food consumption, growth rate and tissue nucleic acids in juvenile Arctic chart, Salvelinus alpinus, with particular respect to compensatory growth. J. Fish Biol. 34: 947–957.

    Google Scholar 

  • Moon, T.W. 1983. Metabolic reserves and enzyme activities with food deprivation in immature American eels, Anguilla rostrata (LeSueur). Can. J. Zool. 61: 802–811.

    Google Scholar 

  • Moon, T.W. & I.A. Johnston. 1980. Starvation and the activities of glycolytic and gluconeogenic enzymes in skeletal muscles and liver of the plaice, Pleuronectes platessa. J. Comp. Physiol. 136: 31–38.

    Google Scholar 

  • Moon, T.W., G.D. Foster & E.M. Plisetskaya. 1989. Changes in peptide hormones and liver enzymes in the rainbow trout deprived of food for 6 weeks. Can. J. Zool. 67: 2189–2193.

    Google Scholar 

  • Newsholme, E. & A.R. Leech. 1983. Biochemistry for the medical sciences. John Wiley & Sons, London. 542 pp.

    Google Scholar 

  • Newsholme, E. & C. Start. 1973. Regulation in metabolism. John Wiley & Sons, London. 349 pp.

    Google Scholar 

  • Richard, P., J.P. Bergeron, M. Boulhic, R. Galois & J. PersonLe Ruyet. 1991. Effect of starvation on RNA, DNA and protein content of laboratory-reared larvae and juveniles of Solea solea. Mar. Ecol. Prog. Ser. 7269–7277.

  • Weatherley, A.H. & H.S. Gill. 1981. Recovery growth following periods of restricted rations and starvation in rainbow trout Salmo gairdneri Richardson. J. Fish Biol. 18: 195–208.

    Google Scholar 

  • Wieser, W. 1991. Limitations of energy acquisition and energy use in small poikilotherms: evolutionary implications. Funct. Ecol. 5: 234–240.

    Google Scholar 

  • Wieser, W., H. Forstner, N. Medgyesy & S. Hinterleitner. 1988a. To switch or not to switch: partitioning of energy between growth and activity in larval cyprinids. Funct. Ecol. 2: 499–507.

    Google Scholar 

  • Wieser, W., H. Forstner, F. Schiemer & W. Mark. 1988b. Growth rates and growth efficiencies in larvae and juveniles of Rutilus rutilus and other cyprinid species: effects of temperature and food in the laboratory and in the field. Can. J. Fish. Aquat. Sci. 45: 943–950.

    Google Scholar 

  • Wieser, W., G. Krumschnabel & J.P. Ojwang-Okwor. 1992. The energetics of starvation and growth after refeeding in juveniles of three cyprinid species. Env. Biol. Fish. 33: 63–71.

    Google Scholar 

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Méndez, G., Wieser, W. Metabolic responses to food deprivation and refeeding in juveniles of Rutilus rutilus (Teleostei: Cyprinidae). Environ Biol Fish 36, 73–81 (1993). https://doi.org/10.1007/BF00005981

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  • DOI: https://doi.org/10.1007/BF00005981

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