Fujita Takuya, Katsukawa Hiromi, Yodoya Etsuo, Wada Miyuki, Shimada Ayumi, Okada Naoki, Yamamoto Akira, Ganapathy Vadivel
Department of Biochemical Pharmacology, Kyoto Pharmaceutical University, Jamashina-ku, Kyoto, Japan.
J Neurochem. 2005 May;93(3):706-14. doi: 10.1111/j.1471-4159.2005.03067.x.
We investigated in the present study the transport characteristics of N-acetyl-L-aspartate in primary cultures of astrocytes from rat cerebral cortex and the involvement of NA+-coupled high-affinity carboxylate transporter NaC3 (formerly known as NaDC3) responsible for N-acetyl-L-aspartate transport. N-acetyl-L-aspartate transport was NA+-dependent and saturable with a Michaelis-Menten constant (Km) of approximately 110 microm. NA+-activation kinetics revealed that the NA+ to-N-acetyl-L-aspartate stoichiometry was 3 : 1 and concentration of Na+ necessary for half-maximal transport (KNA m) was 70 mm. NA+-dependent N-acetyl-L-aspartate transport was competitively inhibited by succinate with an inhibitory constant (Ki) of 14.7 microm, which was comparable to the Km value of NA+-dependent succinate transport (29.4 microm). L-aspartate also inhibited NA+-dependent [14C]N-acetyl-L-aspartate transport with relatively low affinity (Ki = 2.2 mm), whereas N-acetyl-L-aspartate was not able to inhibit NA+-dependent aspartate transport in astrocytes. In addition, Li+ was found to have a significant inhibitory effect on the NA+-dependent N-acetyl-L-aspartate transport in a concentration-dependent manner. Furthermore, RT-PCR and western blot analyses revealed that NaC3 is expressed in primary cultures of astrocytes. Taken collectively, these results indicate that NaC3 expressed in rat cerebrocortical astrocytes is responsible for NA+-dependent N-acetyl-L-aspartate transport. This transporter is likely to be an essential prerequisite for the metabolic role of N-acetyl-L-aspartate in the process of myelination.
在本研究中,我们调查了大鼠大脑皮质星形胶质细胞原代培养物中N-乙酰-L-天冬氨酸的转运特性,以及负责N-乙酰-L-天冬氨酸转运的Na⁺偶联高亲和力羧酸盐转运体NaC3(以前称为NaDC3)的参与情况。N-乙酰-L-天冬氨酸的转运依赖于Na⁺,且具有饱和性,米氏常数(Km)约为110微摩尔。Na⁺激活动力学表明,Na⁺与N-乙酰-L-天冬氨酸的化学计量比为3∶1,半数最大转运所需的Na⁺浓度(KNa m)为70毫摩尔。Na⁺依赖的N-乙酰-L-天冬氨酸转运受到琥珀酸的竞争性抑制,抑制常数(Ki)为14.7微摩尔,这与Na⁺依赖的琥珀酸转运的Km值(29.4微摩尔)相当。L-天冬氨酸也以相对较低的亲和力抑制Na⁺依赖的[¹⁴C]N-乙酰-L-天冬氨酸转运(Ki = 2.2毫摩尔),而N-乙酰-L-天冬氨酸不能抑制星形胶质细胞中Na⁺依赖的天冬氨酸转运。此外,发现Li⁺对Na⁺依赖的N-乙酰-L-天冬氨酸转运具有显著的浓度依赖性抑制作用。此外,逆转录-聚合酶链反应(RT-PCR)和蛋白质免疫印迹分析表明,NaC3在星形胶质细胞原代培养物中表达。综上所述,这些结果表明,大鼠脑皮质星形胶质细胞中表达的NaC3负责Na⁺依赖的N-乙酰-L-天冬氨酸转运。该转运体可能是N-乙酰-L-天冬氨酸在髓鞘形成过程中发挥代谢作用的重要前提条件。