Laboratory of Computational Systems Biotechnology, Ecole Polytechnique Fédérale de Lausanne, Lausanne, Switzerland.
FEMS Yeast Res. 2012 Mar;12(2):129-43. doi: 10.1111/j.1567-1364.2011.00771.x. Epub 2011 Dec 19.
Many important problems in cell biology arise from the dense nonlinear interactions between functional modules. The importance of mathematical modelling and computer simulation in understanding cellular processes is now indisputable and widely appreciated. Genome-scale metabolic models have gained much popularity and utility in helping us to understand and test hypotheses about these complex networks. However, there are some caveats that come with the use and interpretation of different types of metabolic models, which we aim to highlight here. We discuss and illustrate how the integration of thermodynamic and kinetic properties of the yeast metabolic networks in network analyses can help in understanding and utilizing this organism more successfully in the areas of metabolic engineering, synthetic biology and disease treatment.
细胞生物学中的许多重要问题都源于功能模块之间密集的非线性相互作用。数学建模和计算机模拟在理解细胞过程中的重要性现在是无可争议的,并且得到了广泛的认可。基因组规模的代谢模型在帮助我们理解和检验这些复杂网络的假设方面已经变得非常流行和有用。然而,在使用和解释不同类型的代谢模型时,存在一些需要注意的问题,我们旨在在这里强调这些问题。我们讨论并说明了如何在网络分析中整合酵母代谢网络的热力学和动力学特性,以帮助我们在代谢工程、合成生物学和疾病治疗等领域更成功地理解和利用这种生物体。