Osmoregulation by juvenile brown-banded bamboo sharks, Chiloscyllium punctatum, in hypo- and hyper-saline waters.

R L Cramp, M J Hansen, C E Franklin
Author Information
  1. R L Cramp: School of Biological Sciences, The University of Queensland, Brisbane, Queensland 4072, Australia. Electronic address: r.cramp@uq.edu.au.
  2. M J Hansen: School of Biological Sciences, The University of Queensland, Brisbane, Queensland 4072, Australia.
  3. C E Franklin: School of Biological Sciences, The University of Queensland, Brisbane, Queensland 4072, Australia.

Abstract

While there is a considerable body of work describing osmoregulation by elasmobranchs in brackish and saltwater, far fewer studies have investigated osmoregulation in hypersaline waters. We examined osmo- and ionoregulatory function and plasticity in juvenile brown-banded bamboo sharks, Chiloscyllium punctatum, exposed to three experimental salinities (25, 34 and 40‰) for two weeks. C. punctatum inhabits sheltered coastal areas and bays which can naturally become hypersaline as a consequence of evaporation of water but can also become hyposaline during flood events. We hypothesised that C. punctatum would demonstrate a phenotypically plastic osmoregulatory physiology. Plasma osmolality, urea, Na(+) and Cl(-) levels increased significantly with increasing environmental salinity. Rectal gland and branchial sodium-potassium ATPase (NKA) activities were unaffected by salinity. Using immunohistochemistry and Western Blotting we found evidence for the presence of the key ion-regulatory proteins vacuolar H(+)-ATPase (VHA), pendrin (Cl(-)/HCO₃(-) co-transporter) and the Na(+)-H(+) exchanger isoform 3 (NHE3) in discrete cells within the branchial epithelia. These results indicate that C. punctatum is a partially euryhaline elasmobranch able to maintain osmo- and ionoregulatory function between environmental salinities of 25‰ and 40‰. As suggested for other elasmobranchs, the gills of C. punctatum likely play a limited role in maintaining Na(+) homeostasis over the salinity range studied, but may play an important role in acid-base balance.

Keywords

MeSH Term

Acclimatization
Acid-Base Equilibrium
Animals
Epithelium
Fish Proteins
Gills
Homeostasis
Osmoregulation
Saline Waters
Salinity
Salt Gland
Seawater
Sharks
Sodium-Hydrogen Exchanger 3
Sodium-Hydrogen Exchangers
Vacuolar Proton-Translocating ATPases

Chemicals

Fish Proteins
Sodium-Hydrogen Exchanger 3
Sodium-Hydrogen Exchangers
Vacuolar Proton-Translocating ATPases