首页> 外文期刊>Cellular Physiology and Biochemistry >Interaction of Excitatory Amino Acid Transporters 1 - 3 (EAAT1, EAAT2, EAAT3) with N-Carbamoylglutamate and N-Acetylglutamate
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Interaction of Excitatory Amino Acid Transporters 1 - 3 (EAAT1, EAAT2, EAAT3) with N-Carbamoylglutamate and N-Acetylglutamate

机译:兴奋性氨基酸转运蛋白1-3(EAAT1,EAAT2,EAAT3)与N-氨基甲酰谷氨酸和N-乙酰基谷氨酸的相互作用

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>Background/Aims: Inborn deficiency of the N-acetylglutamate synthase (NAGS) impairs the urea cycle and causes neurotoxic hyperammonemia. Oral administration of N-carbamoylglutamate (NCG), a synthetic analog of N-acetylglutamate (NAG), successfully decreases plasma ammonia levels in the affected children. Due to structural similarities to glutamate, NCG may be absorbed in the intestine and taken up into the liver by excitatory amino acid transporters (EAATs). Methods: Using Xenopus laevis oocytes expressing either human EAAT1, 2, or 3, or human sodium-dependent dicarboxylate transporter 3 (NaDC3), transport-associated currents of NAG, NCG, and related dicarboxylates were assayed. Results: L-aspartate and L-glutamate produced saturable inward currents with Km values below 30 ?μM. Whereas NCG induced a small inward current only in EAAT3 expressing oocytes, NAG was accepted by all EAATs. With EAAT3, the NAG-induced current was sodium-dependent and saturable (Km 409 ?μM). Oxaloacetate was found as an additional substrate of EAAT3. In NaDC3-expressing oocytes, all dicarboxylates induced much larger inward currents than did L-aspartate and L-glutamate. Conclusion: EAAT3 may contribute to intestinal absorption and hepatic uptake of NCG. With respect to transport of amino acids and dicarboxylates, EAAT3 and NaDC3 can complement each other.
机译:> 背景/目标: 先天不足的 N -乙酰谷氨酸合酶(NAGS)损害尿素循环并引起神经毒性高氨血症。口服 N -氨基甲酰谷氨酸(NCG)(一种 N -乙酰基谷氨酸(NAG)的合成类似物)成功降低了患病儿童的血浆氨水平。由于与谷氨酸的结构相似,NCG可能被肠内吸收并被兴奋性氨基酸转运蛋白(EAAT)吸收到肝脏中。 方法: 使用表达人类EAAT1、2或3或人类钠依赖性二羧酸盐转运蛋白3(NaDC3)的非洲爪蟾卵母细胞进行转运分析了NAG,NCG和相关二羧酸盐的相关电流。 结果: L-天冬氨酸和L-谷氨酸产生饱和的内向电流,K m 值低于30μM。尽管NCG仅在表达EAAT3的卵母细胞中诱导小的内向电流,但是NAG被所有EAAT接受。用EAAT3,NAG诱导的电流是钠依赖性的且可饱和的(K m 409μM)。发现草酰乙酸盐是EAAT3的另一种底物。在表达NaDC3的卵母细胞中,所有二羧酸盐都比L-天冬氨酸和L-谷氨酸诱导更大的内向电流。 结论: EAAT3可能有助于肠吸收和肝脏摄取NCG。关于氨基酸和二羧酸盐的转运,EAAT3和NaDC3可以彼此互补。

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