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高钾犬红细胞中与(钠,钾)-ATP酶高活性相关的钠梯度依赖性L-谷氨酸和L-天冬氨酸转运增加。

Increase of Na+ gradient-dependent L-glutamate and L-aspartate transport in high K+ dog erythrocytes associated with high activity of (Na+, K+)-ATPase.

作者信息

Inaba M, Maede Y

出版信息

J Biol Chem. 1984 Jan 10;259(1):312-7.

PMID:6142884
Abstract

As reported previously, some dogs possess red cells characterized by low Na+, high K+ concentrations, and high activity of (Na+, K+)-ATPase, although normal dog red cells contain low K+, high Na+, and lack (Na+, K+)-ATPase. Furthermore, these red cells show increased activities of L-glutamate and L-aspartate transport, resulting in high accumulations of such amino acids in their cells. The present study demonstrated: (i) Na+ gradient-dependent L-glutamate and L-aspartate transport in the high K+ and low K+ red cells were dominated by a saturable component obeying Michaelis-Menten kinetics. Although no difference of the Km values was observed between the high K+ and low K+ cells, the Vmax values for both amino acids' transport in the high K+ cells were about three times those of low ones. (ii) L- and D-aspartate, but not D-glutamate, competitively inhibited L-glutamate transport in both types of the cells. (iii) Ouabain decreased the uptake of the amino acids in the high K+ dog red cells, whereas it was not effective on those in the low K+ cells. (iv) The ATP-treated high K+ cells [(K+]i not equal to [K+]o, [Na+]i greater than [Na+]o) showed a marked decrease of both amino acids' uptake rate, which was almost the same as that of the low K+ cells. (v) Valinomycin stimulated the amino acids' transport in both of the high K+ and the ATP-treated low K+ cells [( K+]i greater than [K+]o, [Na+]o), suggesting that the transport system of L-glutamate and L-aspartate in both types of the cells might be electrogenic. These results indicate that the increased transport activity in the high K+ dog red cells was a secondary consequence of the Na+ concentration gradient created by (Na+, K+)-ATPase.

摘要

如先前报道,一些犬类拥有特征为低钠、高钾浓度以及(钠,钾)-ATP酶高活性的红细胞,尽管正常犬类红细胞含有低钾、高钠且缺乏(钠,钾)-ATP酶。此外,这些红细胞显示出L-谷氨酸和L-天冬氨酸转运活性增加,导致这些氨基酸在其细胞内大量积累。本研究表明:(i)高钾和低钾红细胞中钠梯度依赖性L-谷氨酸和L-天冬氨酸转运由遵循米氏动力学的可饱和成分主导。尽管高钾和低钾细胞之间未观察到Km值的差异,但高钾细胞中两种氨基酸转运的Vmax值约为低钾细胞的三倍。(ii)L-和D-天冬氨酸,但不是D-谷氨酸,竞争性抑制两种类型细胞中的L-谷氨酸转运。(iii)哇巴因降低了高钾犬红细胞中氨基酸的摄取,而对低钾细胞中的摄取无效。(iv)经ATP处理的高钾细胞[(钾)i不等于(钾)o,(钠)i大于(钠)o]显示两种氨基酸摄取率显著降低,这与低钾细胞几乎相同。(v)缬氨霉素刺激高钾和经ATP处理的低钾细胞[(钾)i大于(钾)o,(钠)o]中的氨基酸转运,表明两种类型细胞中L-谷氨酸和L-天冬氨酸的转运系统可能是生电的。这些结果表明,高钾犬红细胞中转运活性的增加是由(钠,钾)-ATP酶产生的钠浓度梯度的次要结果。

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