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13C nuclear magnetic resonance and gas chromatography-mass spectrometry studies of carbon metabolism in the actinomycin D producer Streptomyces parvulus by use of 13C-labeled precursors.

机译:通过使用13C标记的前体,在放线菌素D生产者链霉菌链霉菌中碳代谢的13C核磁共振和气相色谱-质谱研究。

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摘要

Fructose and glutamate metabolism was monitored in cell suspensions of streptomyces parvulus by 13C nuclear magnetic resonance. The experiments were performed for cells grown with various 13C sources in a growth medium containing D-[U-13C]fructose, L-[13C]glutamate, or L-[U-13C]aspartate and with nonlabeled precursors to compare intracellular pools in S. parvulus cells at different periods of the cell life cycle. The transport of fructose into the cells was biphasic in nature; during rapid transport, mannitol, fructose, and glucose 6-phosphate were accumulated intracellularly, whereas during the passive diffusion of fructose, the intracellular carbohydrate pool comprised mainly trehalose (1,1'-alpha-alpha-D-glucose). The regulation of fructokinase activity by the intracellular intermediates may play an important role in fructose catabolism in S. parvulus. Transaldolase activity in S. parvulus was determined from the 13C nuclear magnetic resonance labeling pattern of trehalose carbons obtained from cells grown in medium containing either L-[U-13C]aspartate or L-[U-13C]glutamate. Only carbons 4, 5, and 6 of the disaccharide were labeled. Isotopomer analysis of the trehalose carbons led us to conclude that the flux through the reverse glycolytic pathway, condensation of glyceraldehyde 3-phosphate with dihydroxyacetone phosphate, makes at best a minor contribution to the 13C-labeled glucose units observed in trehalose. The pentose pathway and transaldolase activity can explain the labeling pattern of 4,5,6-13C3 of trehalose. Moreover, the transfer of the 13C label of L-[U-13C]aspartate into the different isotopomers of trehalose C4, C5, and C6 by the transaldolase activity allowed us to calculate the relative fluxes from oxaloacetate via gluconeogenesis and through the tricarboxylic acid cycle. The ratio of the two fluxes is approximately 1. However, the main carbon source for trehalose synthesis in S. parvulus is fructose and not glutamate or aspartate. The 13C enrichment and isotopomer population, measured by nuclear magnetic resonance and gas chromatography-mass spectrometry, of the actinomycin D peptide ring enabled us to specify the origins of the five amino acids of actinomycin D. Threonine and proline exhibited isotopomer populations similar to that of the extracellular L-[13C]glutamate, indicating that protein catabolism is the origin of their 13C label, whereas the isotopomer populations of sarcosine and N-methylvaline were similar to those of the new intracellular pool of S. parvulus that originated from D-[U-13C]fructose during the production of actinomycin D.
机译:通过13 C核磁共振监测小链霉菌的细胞悬液中的果糖和谷氨酸代谢。对在含有D- [U-13C]果糖,L- [13C]谷氨酸或L- [U-13C]天冬氨酸的生长培养基中与各种13C来源的细胞进行了实验,并与未标记的前体进行了比较,以比较细小链球菌在细胞生命周期的不同时期。果糖进入细胞的运输本质上是双相的。在快速运输过程中,甘露醇,果糖和6-磷酸葡萄糖在细胞内积累,而在果糖的被动扩散过程中,细胞内碳水化合物库主要包含海藻糖(1,1'-α-α-D-葡萄糖)。细胞内中间体对果糖激酶活性的调节可能在小葡萄球菌的果糖分解代谢中起重要作用。由在含有L- [U-13C]天冬氨酸或L- [U-13C]谷氨酸的培养基中生长的细胞获得的海藻糖碳的13C核磁共振标记模式确定了小叶葡萄球菌中的转醛醇酶活性。二糖中仅碳4、5和6被标记。对海藻糖碳的同位素异构体分析使我们得出结论,通过反向糖酵解途径的通量,即3-磷酸甘油醛与磷酸二羟基丙酮的缩合,充其量仅对在海藻糖中观察到的13C标记的葡萄糖单元产生较小的贡献。戊糖途径和转醛酶活性可以解释海藻糖的4,5,6-13C3的标记模式。此外,通过转醛缩酶活性将L- [U-13C]天冬氨酸的13C标记转移到海藻糖C4,C5和C6的不同同分异构体中,使我们能够通过糖异生和三羧酸循环来计算草酰乙酸的相对通量。 。两种通量之比约为1。但是,小叶葡萄球菌中海藻糖合成的主要碳源是果糖,而不是谷氨酸或天冬氨酸。通过核磁共振和气相色谱-质谱法测量放线菌素D肽环的13 C富集和同位素异构体群体,使我们能够指定放线菌素D的5个氨基酸的来源。苏氨酸和脯氨酸显示出与C相似的同位素异构体群体。细胞外L- [13C]谷氨酸,表明蛋白质分解代谢是其13C标签的起源,而肌氨酸和N-甲基缬氨酸的同位异构体群体与源自D- [放线菌素D生产过程中的U-13C]果糖。

著录项

  • 作者

    Inbar, L; Lapidot, A;

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  • 年度 1991
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  • 原文格式 PDF
  • 正文语种 en
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