Vitamin C uptake and recycling among normal and tumor cells from the central nervous system

脱氢抗坏血酸 抗坏血酸 过剩3 过剩1 维生素C 生物化学 维生素 生物 化学 葡萄糖转运蛋白 内科学 内分泌学 胰岛素 食品科学 医学
作者
Allisson Astuya,Teresa Caprile,Maite A. Castro,Katterine Salazar,María de los Ángeles García,Karin Reinicke,Federico Rodríguez,Juan Carlos Vera,Carola Millán,Viviana Ulloa,Marcela Low,Fernando Martínez de Juan,Francisco Nualart
出处
期刊:Journal of Neuroscience Research [Wiley]
卷期号:79 (1-2): 146-156 被引量:74
标识
DOI:10.1002/jnr.20326
摘要

Abstract Specialized cells transport vitamin C in its reduced form using sodium‐dependent cotransporters (SVCT1 and SVCT2). Additionally, different cells transport the oxidized form of vitamin C, dehydroascorbic acid, through glucose transporters (GLUTs). We have proposed recently a model for vitamin C uptake that resolves the apparent contradiction that although only ascorbic acid is detectable in vivo, there are cells that transport only dehydroascorbic acid. We carried out a detailed kinetic analysis to compare the mechanisms of vitamin C uptake in normal human melanocytes, neurons isolated from brain cortex, hypothalamic ependymal‐glial cells, and astrocytes. Uptake of ascorbic acid was also analyzed in the human oligodendroglioma cell line TC620, in human choroid plexus papilloma cells (HCPPC‐1), and in the neuroblastoma cell line Neuro‐2a. Melanocytes were used to carry out a detailed analysis of vitamin C uptake. Analysis of the transport data by the Lineweaver‐Burk plot revealed the presence of one functional component (K m 20 μM) involved in ascorbic acid transport by melanocytes. Vitamin C sodium‐dependent saturable uptake was also observed in neurons and hypothalamic tanycytes. We confirmed SVCT2 expression in neurons by in situ hybridization; however, SVCT2 expression was not detected in astrocytes in situ. Functional data indicate that astrocytes transport mainly dehydroascorbic acid, using the glucose transporter GLUT1. Our functional uptake analyses support the hypothesis that astrocytes are involved in vitamin C recycling in the nervous system. This recycling model may work as an efficient system for the salvage of vitamin C by avoiding the hydrolysis of dehydroascorbic acid produced by antioxidative protection. © 2004 Wiley‐Liss, Inc.
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