首页> 美国卫生研究院文献>Plant Physiology >Quantification of Compartmented Metabolic Fluxes in Developing Soybean Embryos by Employing Biosynthetically Directed Fractional 13C Labeling Two-Dimensional 13C 1H Nuclear Magnetic Resonance and Comprehensive Isotopomer Balancing
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Quantification of Compartmented Metabolic Fluxes in Developing Soybean Embryos by Employing Biosynthetically Directed Fractional 13C Labeling Two-Dimensional 13C 1H Nuclear Magnetic Resonance and Comprehensive Isotopomer Balancing

机译:通过使用生物合成定向的分数13C标记二维13C1H核磁共振和全面的同位素异构体平衡来量化发育中的大豆胚胎体内的代谢代谢通量

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摘要

Metabolic flux quantification in plants is instrumental in the detailed understanding of metabolism but is difficult to perform on a systemic level. Toward this aim, we report the development and application of a computer-aided metabolic flux analysis tool that enables the concurrent evaluation of fluxes in several primary metabolic pathways. Labeling experiments were performed by feeding a mixture of U-13C Suc, naturally abundant Suc, and Gln to developing soybean (Glycine max) embryos. Two-dimensional [13C, 1H] NMR spectra of seed storage protein and starch hydrolysates were acquired and yielded a labeling data set consisting of 155 13C isotopomer abundances. We developed a computer program to automatically calculate fluxes from this data. This program accepts a user-defined metabolic network model and incorporates recent mathematical advances toward accurate and efficient flux evaluation. Fluxes were calculated and statistical analysis was performed to obtain sds. A high flux was found through the oxidative pentose phosphate pathway (19.99 ± 4.39 μmol d−1 cotyledon−1, or 104.2 carbon mol ± 23.0 carbon mol per 100 carbon mol of Suc uptake). Separate transketolase and transaldolase fluxes could be distinguished in the plastid and the cytosol, and those in the plastid were found to be at least 6-fold higher. The backflux from triose to hexose phosphate was also found to be substantial in the plastid (21.72 ± 5.00 μmol d−1 cotyledon−1, or 113.2 carbon mol ±26.0 carbon mol per 100 carbon mol of Suc uptake). Forward and backward directions of anaplerotic fluxes could be distinguished. The glyoxylate shunt flux was found to be negligible. Such a generic flux analysis tool can serve as a quantitative tool for metabolic studies and phenotype comparisons and can be extended to other plant systems.
机译:植物中的代谢通量定量有助于详细了解代谢,但很难在系统水平上进行。为了实现这一目标,我们报告了计算机辅助代谢通量分析工具的开发和应用,该工具能够同时评估几种主要代谢途径中的通量。通过将U- 13 C Suc,天然丰富的Suc和Gln的混合物饲喂发育中的大豆(Glycine max)胚来进行标记实验。获得种子贮藏蛋白和淀粉水解物的二维[ 13 C, 1 H] NMR谱,得到包含155个 13 C异构体丰度。我们开发了一个计算机程序,可以根据这些数据自动计算通量。该程序接受用户定义的代谢网络模型,并结合了最新的数学进展,以实现准确有效的流量评估。计算通量并进行统计分析以获得sds。通过氧化戊糖途径发现高通量(19.99±4.39μmold -1 子叶 -1 或104.2碳摩尔±23.0碳摩尔每100碳摩尔成功吸收)。在质体和胞质溶胶中可以区分出单独的转酮醇酶和转醛醇酶通量,并且发现质体中的通量分别至少高6倍。在质体中也发现了从磷酸三糖到己糖的回流很大(21.72±5.00μmold -1 子叶 -1 或113.2碳摩尔±26.0碳摩尔每100碳摩尔Suc摄取量)。可以分辨出动脉通量的向前和向后方向。发现乙醛酸酯分流通量可以忽略不计。这种通用的通量分析工具可以用作代谢研究和表型比较的定量工具,并且可以扩展到其他植物系统。

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