TY - JOUR
T1 - Mechanism of acid adaptation of a fish living in a ph 3.5 lake
AU - Hirata, Taku
AU - Kaneko, Toyoji
AU - Ono, Toshihiro
AU - Nakazato, Takeru
AU - Furukawa, Norihisa
AU - Hasegawa, Sanae
AU - Wakabayashi, Shigeo
AU - Shigekawa, Munekazu
AU - Chang, Min Hwang
AU - Romero, Michael F.
AU - Hirose, Shigehisa
PY - 2003/5/1
Y1 - 2003/5/1
N2 - Despite unfavorable conditions, a single species of fish, Osorezan dace, lives in an extremely acidic lake (pH 3.5) in Osorezan, Aomori, Japan. Physiological studies have established that this fish is able to prevent acidification of its plasma and loss of Na+. Here we show that these abilities are mainly attributable to the chloride cells of the gill, which are arranged in a follicular structure and contain high concentrations of Na+-K+-ATPase, carbonic anhydrase II, type 3 Na+/H+ exchanger (NHE3), type 1 Na+-HCO3- cotransporter, and aquaporin-3, all of which are upregulated on acidification. Immunohistochemistry established their chloride cell localization, with NHE3 at the apical surface and the others localized to the basolateral membrane. These results suggest a mechanism by which Osorezan dace adapts to its acidic environment. Most likely, NHE3 on the apical side excretes H+ in exchange for Na+, whereas the electrogenic type 1 Na+-HCO3- cotransporter in the basolateral membrane provides HCO3- for neutralization of plasma using the driving force generated by Na+-K+-ATPase and carbonic anhydrase II. Increased expression of glutamate dehydrogenase was also observed in various tissues of acid-adapted dace, suggesting a significant role of ammonia and bicarbonate generated by glutamine catabolism.
AB - Despite unfavorable conditions, a single species of fish, Osorezan dace, lives in an extremely acidic lake (pH 3.5) in Osorezan, Aomori, Japan. Physiological studies have established that this fish is able to prevent acidification of its plasma and loss of Na+. Here we show that these abilities are mainly attributable to the chloride cells of the gill, which are arranged in a follicular structure and contain high concentrations of Na+-K+-ATPase, carbonic anhydrase II, type 3 Na+/H+ exchanger (NHE3), type 1 Na+-HCO3- cotransporter, and aquaporin-3, all of which are upregulated on acidification. Immunohistochemistry established their chloride cell localization, with NHE3 at the apical surface and the others localized to the basolateral membrane. These results suggest a mechanism by which Osorezan dace adapts to its acidic environment. Most likely, NHE3 on the apical side excretes H+ in exchange for Na+, whereas the electrogenic type 1 Na+-HCO3- cotransporter in the basolateral membrane provides HCO3- for neutralization of plasma using the driving force generated by Na+-K+-ATPase and carbonic anhydrase II. Increased expression of glutamate dehydrogenase was also observed in various tissues of acid-adapted dace, suggesting a significant role of ammonia and bicarbonate generated by glutamine catabolism.
KW - Aquaporin
KW - Carbonic anhydrase
KW - Glutamine catabolism
KW - Sodium-bicarbonate cotransporter
KW - Sodium/proton exchanger
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U2 - 10.1152/ajpregu.00267.2002
DO - 10.1152/ajpregu.00267.2002
M3 - Article
C2 - 12531781
AN - SCOPUS:0344492209
SN - 0363-6119
VL - 284
SP - R1199-R1212
JO - American Journal of Physiology
JF - American Journal of Physiology
IS - 5 53-5
ER -