首页> 外文期刊>Journal of Neurochemistry: Offical Journal of the International Society for Neurochemistry >Alpha-ketoisocaproate alters the production of both lactate and aspartate from (U-13C)glutamate in astrocytes: a 13C NMR study.
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Alpha-ketoisocaproate alters the production of both lactate and aspartate from (U-13C)glutamate in astrocytes: a 13C NMR study.

机译:星形胶质细胞中α-酮异己酸酯改变了(U-13C)谷氨酸的乳酸和天冬氨酸的产生:一项13C NMR研究。

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摘要

The present study determined the metabolic fate of [U-13C]glutamate in primary cultures of cerebral cortical astrocytes from rat brain and also in cultures incubated in the presence of 1 or 5 mM alpha-ketoisocaproate (alpha-KIC). When astrocytes were incubated with 0.2 mM [U-13C]glutamate, 64.1% of the 13C metabolized was converted to glutamine, and the remainder was metabolized via the tricarboxylic acid (TCA) cycle. The formation of [1,2,3-(13)C3]glutamate demonstrated metabolism of the labeled glutamate via the TCA cycle. In control astrocytes, 8.0% of the [13C]glutamate metabolized was incorporated into intracellular aspartate, and 17.2% was incorporated into lactate that was released into the medium. In contrast, there was no detectable incorporation of [13C]glutamate into aspartate in astrocytes incubated in the presence of alpha-KIC. In addition, the intracellular aspartate concentration was decreased 50% in these cells. However, there was increased incorporation of [13C]glutamate into the 1,2,3-(13)C3-isotopomer of lactate in cells incubated in the presence of alpha-KIC versus controls, with formation of lactate accounting for 34.8% of the glutamate metabolized in astrocytes incubated in the presence of alpha-KIC. Altogether more of the [13C]glutamate was metabolized via the TCA cycle, and less was converted to glutamine in astrocytes incubated in the presence of alpha-KIC than in control cells. Overall, the results demonstrate that the presence of alpha-KIC profoundly influences the metabolic disposition of glutamate by astrocytes and leads to altered concentrations of other metabolites, including aspartate, lactate, and leucine. The decrease in formation of aspartate from glutamate and in total concentration of aspartate may impair the activity of the malate-aspartate shuttle and the ability of astrocytes to transfer reducing equivalents into the mitochondria and thus compromise overall energy metabolism in astrocytes.
机译:本研究确定了来自大鼠脑的大脑皮质星形胶质细胞的原代培养物中以及在存在1或5 mMα-酮异己酸(α-KIC)的情况下培养的[U-13C]谷氨酸的代谢命运。当星形胶质细胞与0.2 mM [U-13C]谷氨酸一起孵育时,被代谢的13C的64.1%转化为谷氨酰胺,其余的通过三羧酸(TCA)循环代谢。 [1,2,3-(13)C3]谷氨酸的形成证明了经由TCA循环的标记的谷氨酸的代谢。在对照星形胶质细胞中,将被代谢的8.0%的[13C]谷氨酸掺入细胞内天门冬氨酸,并将17.2%掺入释放到培养基中的乳酸中。相反,在存在α-KIC的情况下,在星形胶质细胞中没有检测到[13C]谷氨酸掺入天冬氨酸中。另外,这些细胞中的细胞内天冬氨酸浓度降低了50%。然而,在存在α-KIC的情况下,与对照相比,[13C]谷氨酸盐掺入乳酸的1,2,3-(13)C3同位素中的比例增加,乳酸的形成占乳酸的134.8%。在存在α-KIC的情况下孵育的星形胶质细胞中代谢的谷氨酸盐。与在对照细胞中相比,在存在α-KIC的星形胶质细胞中,总共有更多的[13C]谷氨酸被代谢,转化为谷氨酰胺的较少。总体而言,结果表明,α-KIC的存在会深刻影响星形胶质细胞对谷氨酸的代谢作用,并导致其他代谢产物(包括天冬氨酸,乳酸和亮氨酸)的浓度发生变化。由谷氨酸形成的天冬氨酸的减少和天冬氨酸的总浓度的降低可能损害苹果酸-天冬氨酸穿梭的活性以及星形胶质细胞将还原当量转移至线粒体的能力,从而损害星形胶质细胞的整体能量代谢。

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