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Cerebral synthesis and release of kynurenic acid: an endogenous antagonist of excitatory amino acid receptors

机译:脑合成和释放尿嘧啶酸:兴奋性氨基酸受体的内源性拮抗剂。

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摘要

Excitatory amino acid (EAA)-mediated synaptic transmission is the most prevalent excitatory system within the mammalian brain. Activation of EAA receptors has been postulated to contribute to neuronal cell death in stroke, epilepsy, hypoglycemia, and Huntington's disease. Kynurenic acid is an endogenous substance that inhibits EAA receptors and may therefore influence important physiologic and pathologic processes. The release of intracerebrally synthesized kynurenic acid into the extracellular fluid (ECF), where it may act at EAA receptors, has not been established in vivo. We studied the synthesis and release of kynurenic acid in the rat striatum using intracerebral microdialysis coupled with high performance liquid chromatography and fluorescence detection. The basal ECF concentration of kynurenic acid in the rat corpus striatum was 17.1 +/- 1.1 nM. Peripheral administration of the immediate biosynthetic precursor of kynurenic acid, L-kynurenine, resulted in marked dose-dependent increases in striatal ECF concentrations of kynurenic acid, peaking at 2-2.5 hr. The highest dose of L-kynurenine (100 mg/kg), administered peripherally, resulted in a 108-fold increase in plasma kynurenic acid levels and a 37-fold increase in cerebral ECF levels. Peripheral administration of kynurenic acid, at a dose that caused plasma levels to increase 430-fold, resulted in only 4-fold increases in striatal ECF concentrations. The precursor responsiveness of striatal ECF kynurenic acid to peripherally infused L-kynurenine was blocked by the central application (via the dialysis probe) of aminooxyacetic acid, an inhibitor of the immediate synthetic enzyme for kynurenic acid, kynurenine aminotransferase. Administration of L-tryptophan was less effective than L-kynurenine in increasing ECF kynurenic acid concentrations and did so at a considerably later time interval (6 hr).(ABSTRACT TRUNCATED AT 250 WORDS)
机译:兴奋性氨基酸(EAA)介导的突触传递是哺乳动物大脑中最普遍的兴奋性系统。据推测,EAA受体的激活会导致中风,癫痫,低血糖和亨廷顿氏病中的神经元细胞死亡。尿酸是一种内源性物质,会抑制EAA受体,因此可能影响重要的生理和病理过程。脑内合成的犬尿嘧啶酸可能会作用于EAA受体的释放到细胞外液(ECF)中尚未在体内建立。我们使用脑内微透析结合高效液相色谱和荧光检测研究了大鼠纹状体中尿嘧啶酸的合成和释放。大鼠纹状体中运动尿酸的基础ECF浓度为17.1 +/- 1.1 nM。外围施用动尿酸的直接生物合成前体L-犬尿氨酸会导致横纹肌酸的纹状体ECF浓度出现明显的剂量依赖性增加,在2-2.5小时达到峰值。最高剂量的L-犬尿氨酸(100 mg / kg)于外周给药,导致血浆动尿酸水平增加108倍,脑ECF水平增加37倍。环磷酰胺酸的外周给药剂量可使血浆水平增加430倍,导致纹状体ECF浓度仅增加4倍。纹状体ECF运动尿酸对周围注入的L-犬尿氨酸的前体反应性被氨氧基乙酸的集中应用(通过透析探针)阻断,后者是立即尿酸的合成酶,犬尿氨酸氨基转移酶的抑制剂。 L-色氨酸的施用在增加ECF尿酸浓度方面不如L-犬尿氨酸有效,并且在相当长的时间间隔(6小时)内施用。(摘要截断为250个字)

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