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永生化小鼠脑内皮细胞中的谷胱甘肽转运:钠依赖性谷胱甘肽转运体顶端定位的证据

GSH transport in immortalized mouse brain endothelial cells: evidence for apical localization of a sodium-dependent GSH transporter.

作者信息

Kannan R, Mittur A, Bao Y, Tsuruo T, Kaplowitz N

机构信息

Research Center for Liver Diseases and Department of Medicine, University of Southern California School of Medicine, Los Angeles 90033, USA.

出版信息

J Neurochem. 1999 Jul;73(1):390-9. doi: 10.1046/j.1471-4159.1999.0730390.x.

Abstract

We have previously shown GSH transport across the blood-brain barrier in vivo and expression of transport in Xenopus laevis oocytes injected with bovine brain capillary mRNA. In the present study, we have used MBEC-4, an immortalized mouse brain endothelial cell line, to establish the presence of Na+-dependent and Na+-independent GSH transport and have localized the Na+-dependent transporter using domain-enriched plasma membrane vesicles. In cells depleted of GSH with buthionine sulfoximine, a significant increase of intracellular GSH could be demonstrated only in the presence of Na+. Partial but significant Na+ dependency of [35S]GSH uptake was observed for two GSH concentrations in MBEC-4 cells in which gamma-glutamyltranspeptidase and gamma-glutamylcysteine synthetase were inhibited to ensure absence of breakdown and resynthesis of GSH. Uniqueness of Na+-dependent uptake in MBEC-4 cells was confirmed with parallel uptake studies with Cos-7 cells that did not show this activity. Molecular form of uptake was verified as predominantly GSH, and very little conversion of [35S]cysteine to GSH occurred under the same incubation conditions. Poly(A)+ RNA from MBEC expressed GSH uptake with significant (approximately 40-70%) Na+ dependency, whereas uptake expressed by poly(A)+ RNA from HepG2 and Cos-1 cells was Na+ independent. Plasma membrane vesicles from MBEC were separated into three fractions (30, 34, and 38% sucrose, by wt) by density gradient centrifugation. Na+-dependent glucose transport, reported to be localized to the abluminal membrane, was found to be associated with the 38% fraction (abluminal). Na+-dependent GSH transport was present in the 30% fraction, which was identified as the apical (luminal) membrane by localization of P-glycoprotein 170 by western blot analysis. Localization of Na+-dependent GSH transport to the luminal membrane and its ability to drive up intracellular GSH may find application in the delivery of supplemented GSH to the brain in vivo.

摘要

我们之前已经证明了谷胱甘肽(GSH)在体内可穿过血脑屏障,并且在注射了牛脑毛细血管mRNA的非洲爪蟾卵母细胞中存在转运表达。在本研究中,我们使用了永生化小鼠脑内皮细胞系MBEC-4,来确定Na⁺依赖性和非Na⁺依赖性GSH转运的存在,并使用富含结构域的质膜囊泡对Na⁺依赖性转运体进行定位。在用丁硫氨酸亚砜胺使细胞内GSH耗竭的情况下,只有在存在Na⁺时,细胞内GSH才能显著增加。在γ-谷氨酰转肽酶和γ-谷氨酰半胱氨酸合成酶被抑制以确保不存在GSH分解和再合成的MBEC-4细胞中,观察到[³⁵S]GSH摄取对两种GSH浓度存在部分但显著的Na⁺依赖性。通过与不显示这种活性的Cos-7细胞进行平行摄取研究,证实了MBEC-4细胞中Na⁺依赖性摄取的独特性。摄取的分子形式被证实主要是GSH,并且在相同孵育条件下,[³⁵S]半胱氨酸向GSH的转化非常少。来自MBEC的聚腺苷酸加尾(poly(A)⁺)RNA表达的GSH摄取具有显著的(约40 - 70%)Na⁺依赖性,而来自HepG2和Cos-1细胞的poly(A)⁺RNA表达的摄取则不依赖于Na⁺。通过密度梯度离心将来自MBEC的质膜囊泡分离为三个部分(按重量计分别为30%、34%和38%的蔗糖)。据报道定位于无腔膜的Na⁺依赖性葡萄糖转运与38%的部分(无腔)相关。Na⁺依赖性GSH转运存在于30%的部分,通过蛋白质印迹分析对P-糖蛋白170进行定位,该部分被确定为顶端(腔)膜。Na⁺依赖性GSH转运定位于腔膜及其提高细胞内GSH的能力可能在体内向脑递送补充的GSH中具有应用价值。

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