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膜电位对兔肾顶端膜摄取泛酸盐和葡萄糖的影响的异质性。

Heterogeneity in the effects of membrane potentials on pantothenate and glucose uptakes by rabbit renal apical membranes.

作者信息

Barbarat B, Chambrey R, Podevin R A

机构信息

Laboratoire de Physiologie et Endocrinologie Cellulaire Rénale, Faculté de Médecine Broussais-Hotel Dieu, Paris, France.

出版信息

J Physiol. 1991 Nov;443:79-90. doi: 10.1113/jphysiol.1991.sp018823.

Abstract
  1. Previous studies using renal brush-border membrane vesicles have established that both the pantothenate and the low Km (Michaelis-Menten constant), low Vmax (maximal rate) D-glucose systems have a stoichiometry of 2 Na+: 1 organic molecule. In this study, we compared the mechanisms by which the membrane potential energizes pantothenate and D-glucose uptakes by brush-border membrane vesicles isolated from the whole cortex of rabbit kidney. 2. In the absence of Na+, varying the membrane potential from +60 to -60 mV decreased pantothenate uptake, whereas D-glucose uptake was increased in a linear manner. These results suggested the existence of a conductive pathway for pantothenate in these membranes. They also suggested that the pantothenate free carrier is electroneutral, while the glucose free carrier is negatively charged. 3. In the presence of an inwardly directed Na+ gradient, varying the membrane potential from +60 to -60 mV increased Na(+)-dependent pantothenate influx linearly. In contrast, a shift from +60 to +40 mV in the membrane potential had no influence on Na(+)-dependent D-glucose influx, whereas influx was a linear function of the membrane potential from +40 to -60 mV, indicating that there is a threshold membrane potential required for membrane potential-dependent D-glucose movement to occur. 4. Kinetic studies revealed that the effect of membrane potential on pantothenate uptake is through changes in the Km, while Vmax was unchanged. On the other hand, the membrane potential exerted its effect on D-glucose transport solely on the Vmax. 5. Finally, binding studies revealed that membrane potential, both in the presence and absence of a Na+ gradient, elicited effects on phlorizin binding qualitatively similar to those observed for D-glucose transport. 6. Implications of these findings for tubular regulation of these electrogenic secondary active transport systems are discussed.
摘要
  1. 以往使用肾刷状缘膜囊泡的研究已证实,泛酸盐和低Km(米氏常数)、低Vmax(最大速率)的D-葡萄糖转运系统的化学计量比均为2个Na⁺:1个有机分子。在本研究中,我们比较了膜电位为兔肾全皮质分离的刷状缘膜囊泡摄取泛酸盐和D-葡萄糖提供能量的机制。2. 在无Na⁺的情况下,将膜电位从+60 mV改变至 -60 mV会降低泛酸盐的摄取,而D-葡萄糖的摄取则呈线性增加。这些结果表明这些膜中存在泛酸盐的传导途径。它们还表明泛酸盐自由载体是电中性的,而葡萄糖自由载体带负电荷。3. 在存在内向Na⁺梯度的情况下,将膜电位从+60 mV改变至 -60 mV会使Na⁺依赖性泛酸盐内流呈线性增加。相比之下,膜电位从+60 mV转变为+40 mV对Na⁺依赖性D-葡萄糖内流没有影响,而从+40 mV至 -60 mV时内流是膜电位的线性函数,这表明膜电位依赖性D-葡萄糖转运发生需要一个阈值膜电位。4. 动力学研究表明,膜电位对泛酸盐摄取的影响是通过Km的变化,而Vmax不变。另一方面,膜电位仅对D-葡萄糖转运的Vmax产生影响。5. 最后,结合研究表明,无论是否存在Na⁺梯度,膜电位对根皮苷结合的影响在质量上与D-葡萄糖转运所观察到的相似。6. 讨论了这些发现对这些生电继发性主动转运系统肾小管调节的意义。

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Transport of D-glucose by brush border membranes isolated from the renal cortex.
Biochim Biophys Acta. 1974 Jul 31;356(2):231-43. doi: 10.1016/0005-2736(74)90286-7.

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