首页> 外文期刊>Neuroscience Letters: An International Multidisciplinary Journal Devoted to the Rapid Publication of Basic Research in the Brain Sciences >Novel Na+ -independent and adenine-specific transport system for adenine in primary cultured rat cortical neurons.
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Novel Na+ -independent and adenine-specific transport system for adenine in primary cultured rat cortical neurons.

机译:新颖的Na +依赖性和腺嘌呤特异性转运系统,用于在原代培养的大鼠皮层神经元中产生腺嘌呤。

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摘要

Endogenous adenine is an important modulator of cell survival and activity in the central nervous system. In the present study, we examined the transport mechanisms for adenine in primary cultured rat cortical neurons and astrocytes. [3H]Adenine was time-dependently taken up into neurons, but not into astrocytes. In kinetic analysis, the [3H]adenine uptake by neurons was observed to be saturable, and an Eadie-Hofstee plot showed that a single component was involved in the uptake, with kinetic parameters of Km=6.09 microM and Vmax=0.340 nmol/mg protein per min. In inhibition assaying by nucleobases and nucleosides, and inhibitors for equilibrative nucleoside transporters, organic ion transporters and peptide transporters, which were reported to transport nucleobases and their analogues, the [3H]adenine uptake by neurons was found to be significantly inhibited by excess concentrations of adenine, hypoxanthine and adenosine, and was greatly reduced only by the addition of adenine. Therefore, it was indicated that adenine in the extracellular fluid in the central nervous system is taken up into neurons, but not into astrocytes, and that neurons may present a novel Na+ -independent and adenine-specific transport system.
机译:内源性腺嘌呤是中枢神经系统中细胞存活和活性的重要调节剂。在本研究中,我们检查了原代培养的大鼠皮质神经元和星形胶质细胞中腺嘌呤的转运机制。 [3H]腺嘌呤被时间依赖性地吸收到神经元中,但不吸收到星形胶质细胞中。在动力学分析中,观察到神经元对[3H]腺嘌呤的吸收是饱和的,并且Eadie-Hofstee图显示单个组分参与了吸收,动力学参数Km = 6.09 microM和Vmax = 0.340 nmol / mg每分钟蛋白质在通过核碱基和核苷以及平衡核苷转运蛋白,有机离子转运蛋白和肽转运蛋白的抑制剂进行的抑制测定中,据报道这些转运蛋白可以转运核碱基及其类似物,神经元[3H]腺嘌呤的摄取被过量浓度的神经元所抑制。腺嘌呤,次黄嘌呤和腺苷,仅通过添加腺嘌呤即可大大减少。因此,表明中枢神经系统中细胞外液中的腺嘌呤被神经元吸收,但不被星形胶质细胞吸收,并且神经元可以表现出新颖的Na +依赖性和腺嘌呤特异性转运系统。

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