Acid-base regulation in fishes: Cellular and molecular mechanisms

被引:255
作者
Claiborne, JB
Edwards, SL
Morrison-Shetlar, AI
机构
[1] Georgia So Univ, Dept Biol, Statesboro, GA 30460 USA
[2] Mt Desert Isl Biol Lab, Salsbury Cove, ME 04672 USA
[3] James Cook Univ N Queensland, Sch Biomed Sci, Dept Physiol & Pharmacol, Cairns, Qld 4870, Australia
来源
JOURNAL OF EXPERIMENTAL ZOOLOGY | 2002年 / 293卷 / 03期
关键词
D O I
10.1002/jez.10125
中图分类号
Q95 [动物学];
学科分类号
071002 ;
摘要
The mechanisms underlying acid-base transfers across the branchial epithelium of fishes have been studied for more than 70 years. These animals are able to compensate for changes to internal pH following a wide range of acid-base challenges, and the gill epithelium is the primary site of acid-base transfers to the water. This paper reviews recent molecular, immunohistochemical, and functional studies that have begun to define the protein transporters involved in the acid-base relevant ion transfers. Both Na+/H+ exchange (NHE) and vacuolar-type H+-ATPase transport H+ from the fish to the environment. While NHEs have been thought to carry out this function mainly in seawater-adapted animals, these proteins have now been localized to mitochondrial-rich cells in the gill epithelium of both fresh and saltwater-adapted fishes. NHEs have been found in the gill epithelium of elasmobranchs, teleosts, and an agnathan. In several species, apical isoforms (NHE2 and NHE3) appear to be up-regulated following acidosis. In freshwater teleosts, H+-ATPase drives H+ excretion and is indirectly coupled to Na+ uptake (via Na+ channels). It has been localized to respiratory pavement cells and chloride cells of the gill epithelium. In the marine elasmobranch, both branchial NHE and H+-ATPase have been identified, suggesting that a combination of these mechanisms may be utilized by marine elasmobranchs for acid-base regulation. An apically located Cl-/HCO(3) over bar anion exchanger in chloride cells may be responsible for base excretion in fresh and seawater-adapted fishes. While only a few species have been examined to date, new molecular approaches applied to a wider range of fishes will continue to improve our understanding of the roles of the various gill membrane transport processes in acid-base balance. (C) 2002 Wiley-Liss, Inc.
引用
收藏
页码:302 / 319
页数:18
相关论文
共 163 条
  • [31] CLAIBORNE JB, 1998, PHYSL FISHES, P179
  • [32] MOLECULAR-CLONING, SEQUENCING, TISSUE DISTRIBUTION, AND FUNCTIONAL EXPRESSION OF A NA+ H+ EXCHANGER (NHE-2)
    COLLINS, JF
    HONDA, T
    KNOBEL, S
    BULUS, NM
    CONARY, J
    DUBOIS, R
    GHISHAN, FK
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1993, 90 (09) : 3938 - 3942
  • [33] Sodium/hydrogen exchanger gene defect in slow-wave epilepsy mutant mice
    Cox, GA
    Lutz, CM
    Yang, CL
    Biemesderfer, D
    Bronson, RT
    Fu, A
    Aronson, PS
    Noebels, JL
    Frankel, WN
    [J]. CELL, 1997, 91 (01) : 139 - 148
  • [34] DERENZIS G, 1973, J EXP BIOL, V59, P339
  • [35] Donowitz M, 2001, CURR TOP MEMBR, V50, P437
  • [36] Immunolocalisation of sodium/proton exchanger-like proteins in the gills of elasmobranchs
    Edwards, SL
    Donald, JA
    Toop, T
    Donowitz, M
    Tse, CM
    [J]. COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY A-MOLECULAR AND INTEGRATIVE PHYSIOLOGY, 2002, 131 (02): : 257 - 265
  • [37] Immunolocalisation of NHE3-like immunoreactivity in the gills of the rainbow trout (Oncorhynchus mykiss) and the blue-throated wrasse (Pseudolabrus tetrious)
    Edwards, SL
    Tse, CM
    Toop, T
    [J]. JOURNAL OF ANATOMY, 1999, 195 : 465 - 469
  • [38] Expression of Na+/H+ exchanger mRNA in the gills of the Atlantic hagfish (Myxine glutinosa) in response to metabolic acidosis
    Edwards, SL
    Claiborne, JB
    Morrison-Shetlar, AI
    Toop, T
    [J]. COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY A-MOLECULAR AND INTEGRATIVE PHYSIOLOGY, 2001, 130 (01): : 81 - 91
  • [39] EDWARDS SL, 2001, FASEB J S, V15, P11
  • [40] EDWARDS SL, 2000, THESIS DEAKIN U VICT