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Exposure to seawater increases intestinal motility in euryhaline rainbow trout (Oncorhynchus mykiss)

  • Jeroen Brijs
  • , Grant W. Hennig
  • , Albin Gräns
  • , Esmée Dekens
  • , Michael Axelsson
  • , Catharina Olsson

    Publication: Contribution to journalJournal articlepeer-review

    Abstract

    Upon exposure to seawater, euryhaline teleosts need to imbibe and desalinate seawater to allow for intestinal ion and water absorption, as this is essential for maintaining osmotic homeostasis. Despite the potential benefits of increased mixing and transport of imbibed water for increasing the efficiency of absorptive processes, the effect of water salinity on intestinal motility in teleosts remains unexplored. By qualitatively and quantitatively describing in vivo intestinal motility of euryhaline rainbow trout (Oncorhynchus mykiss), this study demonstrates that, in freshwater, the most common motility pattern consisted of clusters of rhythmic, posteriorly propagating contractions that lasted similar to 1-2 min followed by a period of quiescence lasting similar to 45 min. This pattern closely resembles mammalian migrating motor complexes (MMCs). Following a transition to seawater, imbibed seawater resulted in a significant distension of the intestine and the frequency of MMCs increased twofold to threefold with a concomitant reduction in the periods of quiescence. The increased frequency of MMCs was also accompanied by ripple-type contractions occurring every 12-60 s. These findings demonstrate that intestinal contractile activity of euryhaline teleosts is dramatically increased upon exposure to seawater, which is likely part of the overall response for maintaining osmotic homeostasis as increased drinking and mechanical perturbation of fluids is necessary to optimise intestinal ion and water absorption. Finally, the temporal response of intestinal motility in rainbow trout transitioning from freshwater to seawater coincides with previously documented physiological modifications associated with osmoregulation and may provide further insight into the underlying reasons shaping the migration patterns of salmonids.
    Original languageEnglish
    Pages (from-to)2397-2408
    Number of pages12
    JournalJournal of Experimental Biology
    Volume220
    Issue number13
    DOIs
    Publication statusPublished - 2017

    Keywords

    • Fish
    • Osmoregulation
    • Enteric electrical activity
    • Spatio-temporal maps
    • Video recordings
    • Salinity

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