SULFATE TRANSPORT BY MOUSE RENAL CORTICAL SLICES DOES NOT REPRESENT UPTAKE BY BRUSH-BORDER MEMBRANE

被引:9
作者
COLE, DEC
KOLTAY, M
SCRIVER, CR
机构
[1] MCGILL UNIV, MONTREAL CHILDRENS HOSP, RES INST, DEBELLE LAB BIOCHEM GENET, MONTREAL H3H 1P3, QUEBEC, CANADA
[2] MCGILL UNIV, MONTREAL CHILDRENS HOSP,RES INST,DEPT BIOL,MRC, GENET GRP, MONTREAL H3H 1P3, QUEBEC, CANADA
关键词
D O I
10.1016/0005-2736(84)90257-8
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Uptake of isotopically 35S-labeled sulfate anion by slices and by brush-border membrane vesicles prepared from mouse renal cortex was measured to identify whether metabolic incorporation of anion influences net transport and which membrane is primarily exposed in the renal cortex slice. Slices accumulated sulfate without significant incorporation into metabolic pools. Net uptake of sulfate at 0.1 mM by the slice occurred against an electrochemical gradient as determined by measurement of free intracellular sulfate concentration, the isotopic distribution ratio at steady-state, and the distribution of lipophilic ions. Carrier mediation of sulfate transport in the slice was confirmed by observing concentration-dependent saturation of net uptake and counter-transport stimulation of efflux. Anion uptake was Na+-independent, K+-and H+-stimulated, and inhibited by disulfonated stilbenes. Brush-border membrane vesicles accumulated sulfate by a saturable mechanism dependent on a Na+ gradient (outside > inside); others have shown that uptake of sulfate by brush-border membrane vesicles is insensitive to inhibition by disulfonated stilbenes. These findings indicate that different mechanisms serve sulfate transport in renal cortex slice and brush-border membrane vesicle preparations. They also imply that the slice exposes an epithelial surface different from the brush-border, presumably the basolateral membrane, or its equivalent, since sulfate transport by slices resembles that observed with isolated basolateral membrane vesicles.
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页码:113 / 121
页数:9
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