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首页> 外文期刊>Amino acids >Evidence that the tri-cellular metabolism of iV-acetylaspartate functions as the brain's 'operating system': how NAA metabolism supports meaningful intercellular frequency-encoded communications
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Evidence that the tri-cellular metabolism of iV-acetylaspartate functions as the brain's 'operating system': how NAA metabolism supports meaningful intercellular frequency-encoded communications

机译:iV-乙酰天门冬氨酸的三细胞代谢起大脑“操作系统”作用的证据:NAA代谢如何支持有意义的细胞间频率编码通讯

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摘要

N-acetylaspartate (NAA), an acetylated derivative of L-aspartate (Asp), and N-acetylaspartylglutamate (NAAG), a derivative of NAA and L-glutamate (Glu), are synthesized by neurons in brain. However, neurons cannot catabolize either of these substances, and so their metabolism requires the participation of two other cell types. Neurons release both NAA and NAAG to extra-cellular fluid (ECF) upon stimulation, where astrocytes, the target cells for NAAG, hydrolyze it releasing NAA back into ECF, and oligodendrocytes, the target cells for NAA, hydrolyze it releasing Asp to ECF for recycling to neurons. This sequence is unique as it is the only known amino acid metabolic cycle in brain that requires three cell types for its completion. The results of this cycling are two-fold. First, neuronal metabolic water is transported to ECF for its removal from brain. Second, the rate of neuronal activity is coupled with focal hyperemia, providing stimulated neurons with the energy required for transmission of meaningful frequency-encoded messages. In this paper, it is proposed that the tri-cellular metabolism of NAA functions as the "operating system" of the brain, and is essential for normal cognitive and motor activities. Evidence in support of this hypothesis is provided by the outcomes of two human inborn errors in NAA metabolism.
机译:L-天冬氨酸(Asp)的乙酰化衍生物N-乙酰天门冬氨酸(NAA)和NAA和L-谷氨酸(Glu)的衍生物N-乙酰天门冬氨酸(NAAG)由大脑中的神经元合成。但是,神经元不能分解任何一种物质,因此它们的新陈代谢需要其他两种细胞的参与。神经元在刺激后将NAA和NAAG释放到细胞外液(ECF)中,其中星形胶质细胞(NAAG的靶细胞)将其水解,从而将NAA释放回ECF中,而少突胶质细胞(NAA的靶细胞)将其水解,将Asp释放到ECF中。回收到神经元。该序列是唯一的,因为它是大脑中唯一需要三种细胞类型才能完成的已知氨基酸代谢循环。该循环的结果是两个方面。首先,将神经元代谢水运输到ECF,以将其从大脑中清除。其次,神经元活动的速率与局灶性充血相结合,为受刺激的神经元提供传输有意义的频率编码消息所需的能量。本文提出,NAA的三细胞代谢起着大脑的“操作系统”的作用,对于正常的认知和运动活动是必不可少的。 NAA代谢中两个人类先天性错误的结果提供了支持该假设的证据。

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