Nöh Katharina, Grönke Karsten, Luo Bing, Takors Ralf, Oldiges Marco, Wiechert Wolfgang
Institute of Biotechnology, Forschungszentrum Jülich GmbH, D-52425 Jülich, Germany.
J Biotechnol. 2007 Apr 30;129(2):249-67. doi: 10.1016/j.jbiotec.2006.11.015. Epub 2006 Dec 1.
A novel approach to (13)C metabolic flux analysis (MFA) is presented using cytosolic metabolite pool sizes and their (13)C labeling data from an isotopically non-stationary (13)C labeling experiment (INST-CLE). The procedure is demonstrated with an E. coli wild type strain grown at fed batch conditions. The intra cellular labeling dynamics are excited by a sudden step increase of the (13)C portion in the substrate feed. Due to unchanged saturation of the substrate uptake system, the metabolic fluxes remain constant during the following sampling time period of only 16s, in which 20 samples are taken by an automated rapid sampling device immediately stopping metabolism by methanol quenching. Subsequent cell disruptive sample preparation and LC-MS/MS enabled simultaneous determination of pool sizes and mass isotopomers of intra cellular metabolites requiring detection limits in the nM range. Based on this data the new computational flux analysis tool 13CFLUX/INST is used to determine the intra cellular fluxes based on a complex carbon labeling network model. The measured data is in good agreement with the model predictions, thus proving the applicability of the new isotopically non-stationary (13)C metabolic flux analysis (INST-(13)C-MFA) concept. Moreover, it is shown that significant new information with respect to flux identifiability, non-measurable pool sizes, data consistency, or large storage pools can be taken from the novel kind of experimental data. This offers new insight into the biological operation of the metabolic network in vivo.
本文提出了一种新的(13)C代谢通量分析(MFA)方法,该方法使用来自同位素非稳态(13)C标记实验(INST-CLE)的胞质代谢物库大小及其(13)C标记数据。该程序在分批补料条件下生长的大肠杆菌野生型菌株中得到了验证。通过突然增加底物进料中(13)C的比例来激发细胞内标记动力学。由于底物摄取系统的饱和度不变,在随后仅16秒的采样时间段内代谢通量保持恒定,在此期间,通过自动快速采样装置采集20个样品,并通过甲醇淬灭立即停止代谢。随后的细胞破碎样品制备和LC-MS/MS能够同时测定细胞内代谢物的库大小和质量同位素异构体,检测限需达到纳摩尔范围。基于这些数据,新的计算通量分析工具13CFLUX/INST用于基于复杂的碳标记网络模型确定细胞内通量。测量数据与模型预测结果吻合良好,从而证明了新的同位素非稳态(13)C代谢通量分析(INST-(13)C-MFA)概念的适用性。此外,研究表明,可以从这种新型实验数据中获取有关通量可识别性、不可测量的库大小、数据一致性或大型储存库的重要新信息。这为体内代谢网络的生物学运作提供了新的见解。