首页> 外文期刊>Journal of Neurochemistry: Offical Journal of the International Society for Neurochemistry >Glutamate metabolism in cerebral mitochondria after ischemia and post-ischemic recovery during aging: relationships with brain energy metabolism
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Glutamate metabolism in cerebral mitochondria after ischemia and post-ischemic recovery during aging: relationships with brain energy metabolism

机译:脑线粒体在缺血和缺血后的脑线粒体中谷氨酸代谢:与脑能代谢的关系

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摘要

Glutamate is involved in cerebral ischemic injury, but its role has not been completely clarified and studies are required to understand how to minimize its detrimental effects, contemporarily boosting the positive ones. In fact, glutamate is not only a neurotransmitter, but primarily a key metabolite for brain bioenergetics. Thus, we investigated the relationships between glutamate and brain energy metabolism in an invivo model of complete cerebral ischemia of 15min and during post-ischemic recovery after 1, 24, 48, 72, and 96h in 1-year-old adult and 2-year-old aged rats. The maximum rates (V-max) of glutamate dehydrogenase (GlDH), glutamate-oxaloacetate transaminase, and glutamate-pyruvate transaminase were assayed in somatic mitochondria (FM) and in intra-synaptic Light' mitochondria and intra-synaptic Heavy' mitochondria ones purified from cerebral cortex, distinguishing post- and pre-synaptic compartments. During ischemia, none of the enzymes were modified in adult animals. In aged ones, glutamate-oxaloacetate transaminase was increased in FM and GlDH in intra-synaptic Heavy' mitochondria, stimulating glutamate catabolism. During post-ischemic recovery, FM did not show modifications at both ages while, in intra-synaptic mitochondria of adult animals, glutamate catabolism was increased after 1h of recirculation and decreased after 48 and 72h, whereas it remained decreased up to 96h in aged rats. These results, with those previously published about Krebs' cycle and Electron Transport Chain (Villa etal., [2013] Neurochem. Int. 63, 765-781), demonstrate that: (i) V-max of energy-linked enzymes are different in the various cerebral mitochondria, which (ii) respond differently to ischemia and post-ischemic recovery, also (iii) with respect to aging.
机译:谷氨酸涉及脑缺血性损伤,但其作用尚未完全澄清,需要研究,了解如何最大限度地减少其有害影响,同时促进积极的效果。事实上,谷氨酸不仅是神经递质,而且主要是脑生物生物能器的关键代谢物。因此,我们研究了在1岁成年人和2年后的1,24,48,72和96h后的完全脑缺血的Invivo模型中谷氨酸和脑能量代谢的关系。 - 老年老年大鼠。谷氨酸脱氢酶(GLDH),谷氨酸 - 草氟乙酯转氨酶和谷氨酸 - 丙酮酸转氨酶的最大速率(V-MAX)在体细胞线粒体(FM)中和突触内轻的线粒体和突触内沉重的线粒体纯化来自脑皮层,区分后突触后隔室。在缺血期间,没有任何酶在成人动物中进行修饰。在樟脑中,在突触内重的重度血管粒细胞中的FM和GLDH中,谷氨酸 - 草酰乙酸酯转氨酶增加,刺激谷氨酸分解代谢。在缺血性回收率期间,FM没有显示两年龄段的修饰,同时,在成人动物的突触内线粒体中,再循环1小时后谷氨酸分解代谢增加,48和72h后降低,而老年大鼠仍然减少至96h 。这些结果,与此前发表过Krebs循环和电子传输链的结果(别墅Etal,[2013] Neurochem。int。63,765-781),证明:(i)能量联合酶的V-Max是不同的在各种脑线粒体中,(ii)在缺血和缺血性回收方面的反应不同,也(iii)相对于老龄化。

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