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D-Serine Production, Degradation, and Transport in ALS: Critical Role of Methodology

机译:D-丝氨酸在ALS中的产生,降解和运输:方法学的关键作用

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In mammalian systems, D-serine is perhaps the most biologically active D-amino acid described to date. D-serine is a coagonist at the NMDA-receptor, and receptor activation is dependent on D-serine binding. Because D-serine binding dramatically increases receptor affinity for glutamate, it can produce excitotoxicity without any change in glutamateper se. D-serine is twofold higher in the spinal cords of mSOD1 (G93A) ALS mice, and the deletion of serine racemase (SR), the enzyme that produces D-serine, results in an earlier onset of symptoms, but with a much slower rate of disease progression. Localization studies within the brain suggest that mSOD1 and subsequent glial activation could contribute to the alterations in SR and D-serine seen in ALS. By also degrading both D-serine and L-serine, SR appears to be a prime bidirectional regulator of free serine levelsin vivo. Therefore, accurate and reproducible measurements of D-serine are critical to understanding its regulation by SR. Several methods for measuring D-serine have been employed, and significant issues related to validation and standardization remain unresolved. Further insights into the intracellular transport and tissue-specific compartmentalization of D-serine within the CNS will aid in the understanding of the role of D-serine in the pathogenesis of ALS.
机译:在哺乳动物系统中,D-丝氨酸可能是迄今为止描述的最具生物活性的D-氨基酸。 D-丝氨酸是NMDA受体的激动剂,受体的激活取决于D-丝氨酸的结合。因为D-丝氨酸结合显着增加了受体对谷氨酸的亲和力,所以它可以产生兴奋性毒性而谷氨酸本身没有任何变化。在mSOD1(G93A)ALS小鼠的脊髓中,D-丝氨酸的含量高出两倍,而产生D-丝氨酸的酶丝氨酸消旋酶(SR)的缺失导致症状的发作较早,但速度较慢疾病进展。脑内的定位研究表明,mSOD1和随后的神经胶质激活可能会导致ALS中SR和D-丝氨酸的改变。通过同时降解D-丝氨酸和L-丝氨酸,SR似乎是体内游离丝氨酸水平的主要双向调节剂。因此,准确和可重复的D-丝氨酸测量对于了解SR对D-丝氨酸的调控至关重要。已经采用了几种测量D-丝氨酸的方法,与验证和标准化有关的重大问题仍未解决。对CNS内D-丝氨酸的细胞内转运和组织特异性区室化的进一步了解将有助于理解D-丝氨酸在ALS的发病机理中的作用。

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