首页> 美国卫生研究院文献>Biochemical Journal >Glucose contribution to nucleic acid base synthesis in proliferating hepatoma cells: a glycine-biosynthesis-mediated pathway.
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Glucose contribution to nucleic acid base synthesis in proliferating hepatoma cells: a glycine-biosynthesis-mediated pathway.

机译:葡萄糖在增殖肝细胞中对核酸碱基合成的贡献:甘氨酸生物合成介导的途径。

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摘要

The coupling of glycolysis to serine and glycine metabolism was studied in fast-growing Zajdela hepatoma cultured cells. During the exponential phase of growth, occurring between 12 and 72 h, cells exhibited a decreased glycogen content together with a high glycolytic activity. Glycogen labelling, evaluated by 1 h-pulse experiments with [U-14C]glucose (5.5 mM), was minimal during the first 48 h and increased 2.5-fold at 72 h and 8-fold at 96 h, at which times it was also stimulated 2-fold by 10 nM insulin. [U-14C]Glucose carbons were incorporated into nucleic acid bases, with maximal incorporation at 72 h, the rate of nucleotide base labelling exceeding that of glycogen during the first 2 days of culture. Incubation of the cells with [U-14C]glucose resulted in the release into the medium of 14C-labelled glycine, the first intermediate formed on the route from serine to DNA. The rate of release per cell decreased as a function of cell growth, concomitantly with an increased rate of glucose carbon incorporation into nucleotide bases. The latter implied the intermediary formation of amino acids since the transaminase inhibitor cycloserine (10 mM), which totally inhibited [14C]glycine release, decreased by 65% nucleotide labelling from [U-14C]glucose. A dose-dependent inhibition by serine of the rate of [U-14C]glucose carbon incorporation into nucleotide bases was observed, which was maximal at 5 mM serine. These metabolic flux measurements indicate that glucose can be used as a precursor of nucleic acid synthesis. These results strongly suggest that this process is to a large extent mediated by a serine/glycine-biosynthesis-mediated pathway, and reinforce the hypothesis that glycolysis contributes to enhancing the provision of precursors required for cell proliferation.
机译:在快速生长的Zajdela肝癌培养细胞中研究了糖酵解与丝氨酸和甘氨酸代谢的耦合。在12至72小时之间的指数生长阶段,细胞显示出降低的糖原含量以及高糖酵解活性。糖原标记是通过[U-14C]葡萄糖(5.5 mM)进行1 h脉冲实验评估的,在最初的48小时内最小,在72 h时增加2.5倍,在96 h时增加8倍。也被10 nM胰岛素刺激2倍。 [U-14C]将葡萄糖碳掺入核酸碱基中,最大掺入时间为72 h,在培养的前2天中核苷酸碱基标记的速率超过了糖原的速率。细胞与[U-14C]葡萄糖一起温育导致14C标记的甘氨酸释放到培养基中,甘氨酸是从丝氨酸到DNA的第一个中间体。每个细胞的释放速率随着细胞生长而降低,同时葡萄糖碳掺入核苷酸碱基的速率增加。后者暗示了氨基酸的中间形成,因为完全抑制[14C]甘氨酸释放的转氨酶抑制剂环丝氨酸(10 mM)从[U-14C]葡萄糖标记减少了65%的核苷酸标记。观察到丝氨酸对[U-14C]葡萄糖碳掺入核苷酸碱基的速率的剂量依赖性抑制,这在5mM丝氨酸时最大。这些代谢通量测量表明葡萄糖可用作核酸合成的前体。这些结果强烈表明,该过程在很大程度上由丝氨酸/甘氨酸生物合成介导的途径介导,并强化了糖酵解有助于增强细胞增殖所需前体的提供的假设。

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