Department of Chemistry, Department of Health Technology and The Novo Nordisk Foundation Center of Biosustainability , Technical University of Denmark , 2800 Kgs Lyngby , Denmark.
Anal Chem. 2019 Apr 16;91(8):5395-5402. doi: 10.1021/acs.analchem.9b00660. Epub 2019 Apr 1.
Dynamic response of intracellular reaction cascades to changing environments is a hallmark of living systems. As metabolism is complex, mechanistic models have gained popularity for describing the dynamic response of cellular metabolism and for identifying target genes for engineering. At the same time, the detailed tracking of transient metabolism in living cells on the subminute time scale has become amenable using dynamic nuclear polarization-enhanced C NMR. Here, we suggest an approach combining in-cell NMR spectroscopy with perturbation experiments and modeling to obtain evidence that the bottlenecks of yeast glycolysis depend on intracellular redox state. In pre-steady-state glycolysis, pathway bottlenecks shift from downstream to upstream reactions within a few seconds, consistent with a rapid decline in the NAD/NADH ratio. Simulations using mechanistic models reproduce the experimentally observed response and help identify unforeseen biochemical events. Remaining inaccuracies in the computational models can be identified experimentally. The combined use of rapid injection NMR spectroscopy and in silico simulations provides a promising method for characterizing cellular reactions with increasing mechanistic detail.
细胞内反应级联对环境变化的动态响应是生命系统的标志。由于代谢过程复杂,因此,为了描述细胞代谢的动态响应并确定工程改造的靶基因,机理模型已变得越来越受欢迎。与此同时,使用动态核极化增强的 C NMR 可以在亚分钟时间尺度上对活细胞中的瞬时代谢进行详细跟踪。在这里,我们提出了一种将细胞内 NMR 光谱学与扰动实验和建模相结合的方法,以获得证据表明酵母糖酵解的瓶颈取决于细胞内氧化还原状态。在准稳态糖酵解中,途径瓶颈在几秒钟内从下游反应转移到上游反应,这与 NAD/NADH 比的快速下降一致。使用机理模型进行的模拟再现了实验观察到的响应,并有助于识别意料之外的生化事件。可以通过实验来确定计算模型中仍然存在的不准确性。快速注射 NMR 光谱学和计算机模拟的联合使用为以越来越高的机理细节来表征细胞反应提供了一种很有前途的方法。