Literature DB >> 26052633

Ionoregulatory Aspects of the Osmorespiratory Compromise during Acute Environmental Hypoxia in 12 Tropical and Temperate Teleosts.

Lisa M Robertson1, Adalberto Luis Val, Vera F Almeida-Val, Chris M Wood.   

Abstract

In the traditional osmorespiratory compromise, as seen in the hypoxia-intolerant freshwater rainbow trout (Oncorhynchus mykiss), the branchial modifications that occur to improve O2 uptake during hypoxia result in unfavorable increases in the fluxes of ions and water. However, at least one hypoxia-tolerant freshwater species, the Amazonian oscar (Astronotus ocellatus), shows exactly the opposite: decreased branchial flux rates of ions, water, and nitrogenous wastes during acute hypoxia. In order to find out whether the two strategies were widespread, we used a standard 2-h normoxia, 2-h hypoxia (20%-30% saturation), 2-h normoxic recovery protocol to survey 10 other phylogenetically diverse tropical and temperate species. Unidirectional influx and efflux rates of Na(+) and net flux rates of K(+), ammonia, and urea-N were measured. The flux reduction strategy was seen only in one additional species, the Amazonian tambaqui (Colossoma macropomum), which is similarly hypoxia tolerant and lives in the same ion-poor waters as the oscar. However, five other species exhibited evidence of the increased flux rates typical of the traditional osmorespiratory compromise in the trout: the rosaceu tetra (Hyphessobrycon bentosi rosaceus), the moenkhausia tetra (Moenkhausia diktyota), the bluegill sunfish (Lepomis macrochirus), the zebra fish (Danio rerio), and the goldfish (Carassius auratus). Four other species exhibited no marked flux changes during hypoxia: the cardinal tetra (Paracheirodon axelrodi), the hemigrammus tetra (Hemigrammus rhodostomus), the pumpkinseed sunfish (Lepomis gibbosus), and the Atlantic killifish (Fundulus heteroclitus). Overall, a diversity of strategies exist; we speculate that these may be linked to differences in habitat and/or lifestyle.

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Year:  2015        PMID: 26052633     DOI: 10.1086/681265

Source DB:  PubMed          Journal:  Physiol Biochem Zool        ISSN: 1522-2152            Impact factor:   2.247


  8 in total

1.  The physiology of the Tambaqui (Colossoma macropomum) at pH 8.0.

Authors:  Chris M Wood; R J Gonzalez; Márcio Soares Ferreira; Susana Braz-Mota; Adalberto Luis Val
Journal:  J Comp Physiol B       Date:  2017-11-30       Impact factor: 2.200

2.  The effects of acute transfer to freshwater on ion transporters of the pharyngeal cavity in European seabass (Dicentrarchus labrax).

Authors:  Gersende Maugars; Marie-Chanteuse Manirafasha; Evelyse Grousset; Viviane Boulo; Jehan-Hervé Lignot
Journal:  Fish Physiol Biochem       Date:  2018-06-19       Impact factor: 2.794

3.  Nitrogen metabolism in tambaqui (Colossoma macropomum), a neotropical model teleost: hypoxia, temperature, exercise, feeding, fasting, and high environmental ammonia.

Authors:  Chris M Wood; José Gadelha de Souza Netto; Jonathan M Wilson; Rafael M Duarte; Adalberto Luis Val
Journal:  J Comp Physiol B       Date:  2016-08-16       Impact factor: 2.200

4.  The transition from water-breathing to air-breathing is associated with a shift in ion uptake from gills to gut: a study of two closely related erythrinid teleosts, Hoplerythrinus unitaeniatus and Hoplias malabaricus.

Authors:  Chris M Wood; Bernd Pelster; Marina Giacomin; Helen Sadauskas-Henrique; Vera Maria F Almeida-Val; Adalberto Luis Val
Journal:  J Comp Physiol B       Date:  2016-02-08       Impact factor: 2.200

5.  Gill paracellular permeability and the osmorespiratory compromise during exercise in the hypoxia-tolerant Amazonian oscar (Astronotus ocellatus).

Authors:  Lisa M Robertson; Daiani Kochhann; Adalto Bianchini; Victoria Matey; Vera F Almeida-Val; Adalberto Luis Val; Chris M Wood
Journal:  J Comp Physiol B       Date:  2015-06-27       Impact factor: 2.200

6.  Osmorespiratory compromise in an elasmobranch: oxygen consumption, ventilation and nitrogen metabolism during recovery from exhaustive exercise in dogfish sharks (Squalus suckleyi).

Authors:  Marina Giacomin; Patricia M Schulte; Chris M Wood
Journal:  J Comp Physiol B       Date:  2022-07-15       Impact factor: 2.230

7.  Is aquaporin-3 involved in water-permeability changes in the killifish during hypoxia and normoxic recovery, in freshwater or seawater?

Authors:  Ilan M Ruhr; Chris M Wood; Kevin L Schauer; Yadong Wang; Edward M Mager; Bruce Stanton; Martin Grosell
Journal:  J Exp Zool A Ecol Integr Physiol       Date:  2020-06-17

8.  The osmorespiratory compromise in the euryhaline killifish: water regulation during hypoxia.

Authors:  Chris M Wood; Ilan M Ruhr; Kevin L Schauer; Yadong Wang; Edward M Mager; M Danielle McDonald; Bruce Stanton; Martin Grosell
Journal:  J Exp Biol       Date:  2019-09-24       Impact factor: 3.312

  8 in total

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