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Physiological adaptation to hypoxia of a neotropical characoid fish Colossoma macropomum, Serrasalmidae

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Investigations of seasonal changes in the hematological parameters of Colossoma macropomum revealed that during times of the year when they are exposed to low oxygen concentrations (< 0.5 mg 1−1), there is an increase in the hemoglobin content of the blood and the erythrocyte count. Experiments to determine the influence of oxygen content on the routine oxygen consumption showed that the critical concentration is 2 mg 1−1 at 30°C. At concentrations below 0.5 mg O2 1−1, surface water is used for aquatic respiration. Above the critical concentration, short-term fluctuations in oxygen availability are compensated for by adjustment in the ventilation rate. Gas exchange is facilitated by the unusually large gill surface area (349 mm2g−1 for a 200 g fish).

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References cited

  • Black, E.C. 1955. Blood levels of hemoglobin and lactic acid in some freshwater fishes following exercice. J. Fish. Res. Board Can. 12: 917–929.

    Google Scholar 

  • Blaxhall, P.C. 1972. The hematological assessment of the health of freshwater fish. A review of selected literature. J. Fish Biol. 4: 593–604.

    Google Scholar 

  • Blaxhall, P.C. 1973. Error in haematocrit value produced by inadequate concentration of ethylenediamin tetra-acetate. J. Fish Biol. 5: 767–769.

    Google Scholar 

  • Blaka, P. 1958. The anaerobic metabolism of fish. Physiol. Zool. 31: 117–128.

    Google Scholar 

  • Braum, E. & W.J. Junk. 1982. Morphological adaptation of two Amazonian Characoids (Pisces) for surviving in oxygen deficient waters. Int. Revue ges. Hydrobiol. 67: 869–886.

    Google Scholar 

  • Carter, G.S. & L.C. Beadle. 1931. The fauna of the swamps of the Paraguayan Chaco in relation to its environment. II. Respiratory adaptations in the fishes. J. Linn. Soc. of London (Zool.) 37: 327–366.

    Google Scholar 

  • Chiba, K. 1966. A study on the influence of oxygen concentration on the growth of juvenile common carp. Bull. Freshwat. Fish. Res. Lab. 15: 35–47.

    Google Scholar 

  • Coche, A.G. 1967. Oxygen consumption as related to body size in juvenile steelhead, Salmo gairdneri Richardson. Hydrobiologia 29: 165–184.

    Google Scholar 

  • Davis, J.C. 1975. Minimal dissolved oxygen requirements of aquatic life with emphasis on Canadian species: a review. J. Fish. Res. Board Can. 32: 2295–2332.

    Google Scholar 

  • Doudoroff, P. & D.L. Shumway. 1970. Dissolved oxygen requirements of freshwater fishes. FAO Fish. tech. Pap. 86. 291 pp.

  • Eastheam, R.D. 1968. Klinisch Hämatologie. Springer Verlag Berlin.

    Google Scholar 

  • Fourie, F.le R. & J.H.J. van Vuren. 1976. A seasonal study on the hemoglobin of carp (Cyprinus carpio) and yellow fish (Barbus holubi) in South Africa. Comp. Biochem. Physiol. 55 B: 523–525.

    Google Scholar 

  • Fry, F.E.J. 1971. The effect of environmental factors on the physiology of fish. pp. 1–98. In: W.S. Hoar & D.J. Randall (ed.) Fish Physiology, vol. 6, Academic Press, New York.

  • Gee, J.H., R.F. Tallman & H.J. Smart. 1978. Reactions of some great plains fishes to progressive hypoxia. Can. J. Zool. 56: 1962–1966.

    Google Scholar 

  • Geisler, R. 1969. Untersuchungen über den Sauerstoffgehalt, den biochemischen Sauerstoffbedarf und den Sauerstoffverbrauch von Fischen in einem tropischen Schwarzwasser (Rio Negro, Amazonia, Brasil). Arch. Hydrobiol. 66: 307–325.

    Google Scholar 

  • Goltermann, H.L. 1971. Methods for chemical analysis of fresh waters. IBP Handbook No. 8. Blackwell, Oxford. 180 pp.

    Google Scholar 

  • Goulding, M. & M.L. Carvalho. 1982. Life history and management of the tambaqui (Colossoma macropomum, Characidae): an important Amazonia food fish Revta. bras. Zool. 1: 107–133.

    Google Scholar 

  • Hochachka, P.W. & G.N. Somero. 1973. Strategies of biochemical adaptation. W.B. Saunders Company, Philadelphia, 358 pp.

    Google Scholar 

  • Holeton, G.F. & D.J. Randall. 1967. The effect of hypoxia upon pressure of gases in the blood and water afferent and efferent to the gills of rainbow trout. J. exp. Biol. 46: 317–327.

    Google Scholar 

  • Hughes, G.M. 1966. The dimensions of fish gills in relation to their function. J. exp. Biol. 45: 177–195.

    Google Scholar 

  • Hughes, G.M. 1980. Morphometry of fish gas exchage organs in relation to their function. pp. 33–56. In: M.A. Ali (ed.) Environmental Physiology of Fishes, Plenum Publishing Corporation, New York.

    Google Scholar 

  • Hughes, G.M. & T. Iwai. 1978. A morphometric study of the gills in some Pacific deep sea fishes. J. Zool., Lond. 184: 155–170.

    Google Scholar 

  • Jager, S. de & W.J. Dekkers. 1975. Relation between gill structure and activity in fish. Neth. J. Zool. 25: 276–308.

    Google Scholar 

  • Jager, S. de, M.E. Smit-Onel, J.J. Videler, J.M. van Gils & E.M. Uffink. 1977. The respiratory area of the gills of some teleost fishes in relation to their mode of life. Bijdragen tot de Dierkunde 46: 199–205.

    Google Scholar 

  • Jones, D.R. & D.J. Randall. 1978. The respiratory and circulatory systems. pp. 425–501. In: W.S. Hoar & D.J. Randall (ed.) Fish Physiology, vol. 7, Academic Press, New York.

  • Junk, W.J. 1970. Investigations on the ecology and production biology of the ‘floating meadows’ (Paspalo-Echinochloetum) on the Middle Amazon. Part I: The floating vegetation and its ecology. Amazoniana 2: 449–495.

    Google Scholar 

  • Junk, W.J. 1973. Investigations on the ecology and production biology of the ‚floating meadows’ (Paspalo-Echinochloetum) on the Middle Amazon. Part II: The aquatic fauna in the root zone of the floating vegetation. Amazoniana 4: 9–102.

    Google Scholar 

  • Junk, W.J. 1980. Inundation areas. Um desafio para a limnologia. Acta Amazonica 10: 775–795 (In Portuguese).

    Google Scholar 

  • Kirk, W.L. 1974. The effects of hypoxia on certain blood tissue electrolytes of channel catfish, Ictalurus punctatus (Rafinesque). Trans. Amer. Fish. Soc. 103: 593–600.

    Google Scholar 

  • Kramer, D.L., C.C. Lindsey, G.E.E. Moodie & E.D. Stevens. 1978. The fishes and the aquatic environment of the Central Amazon basin, with particular reference to respiratory patterns. Can. J. Zool. 56: 717–729.

    Google Scholar 

  • Kramer, D.L. & M. McClure. 1982. Aquatic surface respiration, a widespread adaptation to hypoxia in tropical freshwater fishes. Env. Biol. Fish. 7: 47–55.

    Google Scholar 

  • Kutty, M.N. 1972. Respiratory quotient and ammonia excretion in Tilapia mossambica. Mar. Biol. 16: 126–133.

    Google Scholar 

  • Lehmann, J. & F.J. Stürenberg. 1974. Hämatologisch-serolo-gische Substratuntersuchungen an der Regenbogenforelle (Salmo gairdneri Richardson). I. Methodik zur Blutentnahme und Blutuntersuchung bei Fischen. Gewässer and Abwässer 53/54: 114–132.

    Google Scholar 

  • Lewis, Jr., W.M. 1970. Morphological adaptations of carpinodontoids for inhabiting oxygen deficient waters. Copeia 1970: 319–326.

  • MacLeod, J.C. & L.L. Smith Jr. 1966. Effect of pulpwood fiber on oxygen and swimming endurance of the fathead minnow, Pimephales promelas. Trans. Amer. Fish. Soc. 95: 71–84.

    Google Scholar 

  • Muir, B.S. & G.H. Hughes. 1969. Gill dimensions for three species of tunny. J. exp. Zool. 51: 271–285.

    Google Scholar 

  • Mukhamedova, A.F. 1977. The level of standard metabolism of young silver carp, Hypophthalmichthys molitrix. J. Ichtyol. 17: 292–299.

    Google Scholar 

  • Ostroumova, I.N. 1964. Condition of trout blood at adaptation to different oxygen and salt conditions of water. Izv. Vses. (Gos.) Nauchno-Issled. Inst. Ozern. Retchn. Ryb. Khoz. 58: 27–36.

    Google Scholar 

  • Prosser, C.L., L.M. Barr, R.D. Pinc & C.Y. Lauer. 1957. Acclimation of goldfish to low concentrations of oxygen. Physiol. Zool. 30: 137–141.

    Google Scholar 

  • Randall, D.J. 1970. Gas exchange in fish. pp. 253–292. In: W.S. Hoar & D.J. Randall (ed.) Fish Physiology, vol. 4, Academic Press, New York.

  • Sachs, L. 1978. Angewandte Statistik. Springer Verlag, Berlin. 552 pp.

    Google Scholar 

  • Saint-Paul, U. 1982a. Ökologische und physiologische Untersuchugen an dem Amazonasfisch Tambaqui Colossoma macropomum (Cuvier 1818) im Hinblick auf seine Eignung für die tropische Fischzucht (Pisches, Serralsalmidae). Ph.D. Thesis, University of Hamburg, Hamburg. 220 pp.

  • Saint-Paul, U. 1982 b. Investigations on the respiration of the Neotropical fish, Colossoma macropomum (Serrasalmidae). The influence of weight and temperature on the routine oxygen consumption. Amazoniana 7: 433–443.

    Google Scholar 

  • Saint-Paul, U. & U. Werder. 1981. The potential of some Amazonian fishes for :arm water aquaculture. pp. 275–287. In: K. Tiews (ed.) Proc. World Symp. on Aquaculture in Heated Effluents and Recirculation Systems, Stavanger 28–30 May, 1980, vol. 2, Heeremann Verlag, Berlin.

  • Saunders, R.L. 1962. The irrigation of the gills in fishes. II. Efficiency of oxygen uptake in relation to respiratory flow activity and concentrations of oxygen and carbon dioxide. Can. J. Zool. 40: 817–862.

    Google Scholar 

  • Schmidt, G.W. 1973. Primary production of phytoplankton in the three types of Amazonian waters. II. The limnology of a tropical flood-plain lake in Central Amazonia (Lago do Castanho). Amazoniana 4: 139–204.

    Google Scholar 

  • Scott, A.L. & W.A. Rogers. 1981. Haematological effects of prolonged sublethal hypoxia on channel catfish Ictalurus punctatus (Rafinesque). J. Fish Biol. 18: 591–601.

    Google Scholar 

  • Sioli, H. 1968. Zur Ökologie des Amazonasgebietes. pp. 137–170 In: E.J. Fittkau et al. (ed.) Biogeography and Ecology in South America, Dr. W. Junk Publishers, The Hague.

    Google Scholar 

  • Stroganov, N.S. 1964. Methods of study of respiration in fish. pp. 27–79. In: E.N. Pavlovskii (ed.) Techniques For the Investigation of Fish Physiology, Israel Program for Scientific Translations, Jerusalem.

    Google Scholar 

  • Swift, D.J. & R. Lloyd. 1974. Changes in urine flow rate and haematocrit value of rainbow trout Salmo gairdneri (Richardson) exposed to hypoxia. J. Fish Biol. 6: 379–387.

    Google Scholar 

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Saint-Paul, U. Physiological adaptation to hypoxia of a neotropical characoid fish Colossoma macropomum, Serrasalmidae. Environ Biol Fish 11, 53–62 (1984). https://doi.org/10.1007/BF00001845

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