Singh Shalini, Samal Areejit, Giri Varun, Krishna Sandeep, Raghuram Nandula, Jain Sanjay
Department of Physics and Astrophysics, University of Delhi, Delhi 110007, India.
Phys Rev E Stat Nonlin Soft Matter Phys. 2013 May;87(5):052708. doi: 10.1103/PhysRevE.87.052708. Epub 2013 May 14.
Unraveling the structure of complex biological networks and relating it to their functional role is an important task in systems biology. Here we attempt to characterize the functional organization of the large-scale metabolic networks of three microorganisms. We apply flux balance analysis to study the optimal growth states of these organisms in different environments. By investigating the differential usage of reactions across flux patterns for different environments, we observe a striking bimodal distribution in the activity of reactions. Motivated by this, we propose a simple algorithm to decompose the metabolic network into three subnetworks. It turns out that our reaction classifier, which is blind to the biochemical role of pathways, leads to three functionally relevant subnetworks that correspond to input, output, and intermediate parts of the metabolic network with distinct structural characteristics. Our decomposition method unveils a functional bow-tie organization of metabolic networks that is different from the bow-tie structure determined by graph-theoretic methods that do not incorporate functionality.
解析复杂生物网络的结构并将其与功能作用联系起来是系统生物学中的一项重要任务。在此,我们试图描述三种微生物大规模代谢网络的功能组织。我们应用通量平衡分析来研究这些生物体在不同环境中的最优生长状态。通过研究不同环境下通量模式中反应的差异使用情况,我们观察到反应活性呈现出显著的双峰分布。受此启发,我们提出一种简单算法将代谢网络分解为三个子网。结果表明,我们的反应分类器对代谢途径的生化作用不敏感,却能产生三个功能相关的子网,分别对应代谢网络具有不同结构特征的输入、输出和中间部分。我们的分解方法揭示了代谢网络的一种功能领结组织,它不同于由不考虑功能的图论方法所确定的领结结构。