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兔肾微绒毛膜囊泡中不存在氯离子-羟基交换和氯化钠协同转运。

Absence of Cl-OH exchange and NaCl cotransport in rabbit renal microvillus membrane vesicles.

作者信息

Seifter J L, Knickelbein R, Aronson P S

出版信息

Am J Physiol. 1984 Nov;247(5 Pt 2):F753-9. doi: 10.1152/ajprenal.1984.247.5.F753.

Abstract

Cl-transport was studied in microvillus membrane vesicles isolated from the rabbit renal cortex. Inwardly directed K+ gradients in the presence of the K+ ionophore valinomycin (Val) enhanced 10 mM 36Cl uptake 2.5-fold, confirming a Cl- conductive pathway. An inwardly directed H+ gradient (pHin 7.5, pHout 6.0) stimulated 10 mM Cl- uptake 1.5-fold compared with pHin = pHout = 6.0. However, this H+ gradient stimulation of Cl- uptake appeared secondary to the H+ diffusion potential rather than to Cl-OH exchange, as it was abolished by Val and K+in = K+out. Additional evidence against Cl- transport via anion exchange was the failure of an inwardly directed Cl- gradient to generate an inside-acid pH gradient as monitored by quenching of acridine orange fluorescence. Cl- influx was the same in the presence of inwardly directed gradients of Na+, K+, Cs+, Li+, and Rb+, arguing against NaCl cotransport. Finally, conductive Cl- transport was reduced by the inhibitors furosemide, 4,4'-diisothiocyanostilbene-2,2'-disulfonic acid and 4-acetamido-4'-isothiocyanostilbene-2,2'-disulfonic acid. These data indicate the presence of an inhibitor-sensitive, conductive mode of Cl- transport but fail to demonstrate significant pathways for Cl- OH exchange or NaCl cotransport in rabbit renal microvillus membrane vesicles.

摘要

对从兔肾皮质分离出的微绒毛膜囊泡中的氯离子转运进行了研究。在钾离子载体缬氨霉素(Val)存在的情况下,内向性钾离子梯度使10 mM 36Cl摄取增加了2.5倍,证实了氯离子传导途径。与pHin = pHout = 6.0相比,内向性氢离子梯度(pHin 7.5,pHout 6.0)使10 mM氯离子摄取增加了1.5倍。然而,这种氢离子梯度对氯离子摄取的刺激似乎继发于氢离子扩散电位,而非氯离子-氢氧根离子交换,因为它被缬氨霉素和钾离子内外平衡所消除。反对通过阴离子交换进行氯离子转运的额外证据是,内向性氯离子梯度未能产生如通过吖啶橙荧光猝灭监测的胞内酸性pH梯度。在存在内向性钠离子、钾离子、铯离子、锂离子和铷离子梯度的情况下,氯离子内流相同,这反对了氯化钠共转运。最后,氯离子传导性转运被抑制剂呋塞米、4,4'-二异硫氰基芪-2,2'-二磺酸和4-乙酰氨基-4'-异硫氰基芪-2,2'-二磺酸所降低。这些数据表明存在一种对抑制剂敏感的氯离子传导性转运模式,但未能证明兔肾微绒毛膜囊泡中存在氯离子-氢氧根离子交换或氯化钠共转运的重要途径。

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