喹啉酸损伤大鼠脑内海马复合体毛细血管γ -谷氨酰转肽酶的生化特征。

F Stastný, L Dvoráková, V Lisý
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引用次数: 10

摘要

喹啉酸(QUIN)是一种内源性的n -甲基- d -天冬氨酸(NMDA)型谷氨酸受体的兴奋毒性激动剂,可导致大脑某些区域的易感神经元缓慢进行性变性。将膜结合γ -谷氨酰转肽酶(GGT)活性的变化作为细胞损伤的标志,我们发现,在单侧脑室内注射0.5 μ l QUIN后4天,该酶活性显著降低,且优先位于同侧海马区和内鼻皮层。将双侧注射的奎因分成两个半剂量,导致海马区GGT活性的对称下降。病变的特征是海马和内嗅毛细血管GGT活性受到抑制,分别相当于其初始值的60%和81%,但突触体膜未见明显变化。毛细血管GGT活性的变化与表观最大流速Vmaxapp的降低有关,而表观Michaelis常数K(m)app (0.69 ~ 0.79 mM)不受影响。在未受损的大脑中,康纳蛋白A (Con A)亲和层析显示突触体GGT的五种糖型,而在海马和内嗅毛细血管中仅发现一种。结果表明,奎恩诱导的大鼠脑损伤对GGT的糖基部分和K(m)app酶值均无显著影响。然而,GGT活性的抑制,伴随着脑微血管Vmaxapp值的降低,可能提示了quin损伤大鼠脑血脑屏障(BBB)功能障碍。
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Biochemical characteristics of gamma-glutamyl transpeptidase in capillaries from entorhinohippocampal complex of quinolinate-lesioned rat brain.

Quinolinic acid (QUIN) is an endogenous excitotoxic agonist of the N-methyl-D-aspartate (NMDA) type of glutamate receptor, which causes slowly progressing degeneration of vulnerable neurons in some brain regions. Using changes in the activity of membrane-bound gamma-glutamyl transpeptidase (GGT) as a marker of cell damage, we found a significant decrease of this enzyme activity, which was preferentially located in the ipsilateral hippocampal formation and entorhinal cortex, 4 d after the unilateral intracerebroventricular (icv) injection of 0.5 mumol QUIN. The dose of QUIN divided into two half-doses injected bilaterally led to a symmetrical decline of GGT activity in hippocampal areas. The lesion was characterized by a suppression of GGT activity in hippocampal and entorhinal capillaries, corresponding to 60 and 81% of their initial value, respectively, but no significant changes were ascertained in synaptosomal membranes. The changes in the activity of capillary GGT were associated with the decrease of apparent maximal velocity Vmaxapp, whereas apparent Michaelis constant K(m)app (0.69-0.79 mM) remained unaffected. In the nonlesioned brain, concanavalin A (Con A) affinity chromatography revealed five glycoforms of synaptosomal GGT in contrast to only one found in hippocampal and entorhinal capillaries. The results document that neither the saccharide moiety of GGT nor the value of enzyme K(m)app is significantly affected by the QUIN-induced lesion of the rat brain. However, the suppression of GGT activity, which is accompanied by a decrease in the value of Vmaxapp in brain microvessels, may suggest dysfunction of the blood-brain barrier (BBB) in the QUIN-injured rat brain.

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