Schilling C H, Palsson B O
Department of Bioengineering, University of California, San Diego La Jolla, CA 92093-0412, USA.
Proc Natl Acad Sci U S A. 1998 Apr 14;95(8):4193-8. doi: 10.1073/pnas.95.8.4193.
Bioinformatics is yielding extensive, and in some cases complete, genetic and biochemical information about individual cell types and cellular processes, providing the composition of living cells and the molecular structure of its components. These components together perform integrated cellular functions that now need to be analyzed. In particular, the functional definition of biochemical pathways and their role in the context of the whole cell is lacking. In this study, we show how the mass balance constraints that govern the function of biochemical reaction networks lead to the translation of this problem into the realm of linear algebra. The functional capabilities of biochemical reaction networks, and thus the choices that cells can make, are reflected in the null space of their stoichiometric matrix. The null space is spanned by a finite number of basis vectors. We present an algorithm for the synthesis of a set of basis vectors for spanning the null space of the stoichiometric matrix, in which these basis vectors represent the underlying biochemical pathways that are fundamental to the corresponding biochemical reaction network. In other words, all possible flux distributions achievable by a defined set of biochemical reactions are represented by a linear combination of these basis pathways. These basis pathways thus represent the underlying pathway structure of the defined biochemical reaction network. This development is significant from a fundamental and conceptual standpoint because it yields a holistic definition of biochemical pathways in contrast to definitions that have arisen from the historical development of our knowledge about biochemical processes. Additionally, this new conceptual framework will be important in defining, characterizing, and studying biochemical pathways from the rapidly growing information on cellular function.
生物信息学正在产生关于个体细胞类型和细胞过程的广泛的、在某些情况下甚至是完整的遗传和生化信息,揭示活细胞的组成及其成分的分子结构。这些成分共同执行综合的细胞功能,而这些功能现在需要进行分析。特别是,生化途径的功能定义及其在整个细胞背景下的作用尚不清楚。在本研究中,我们展示了控制生化反应网络功能的质量平衡约束如何将这个问题转化为线性代数领域的问题。生化反应网络的功能能力,以及细胞能够做出的选择,都反映在其化学计量矩阵的零空间中。零空间由有限数量的基向量张成。我们提出了一种算法,用于合成一组张成化学计量矩阵零空间的基向量,其中这些基向量代表了相应生化反应网络所基于的基本生化途径。换句话说,一组定义好的生化反应所能实现的所有可能的通量分布都由这些基本途径的线性组合表示。因此,这些基本途径代表了所定义的生化反应网络的潜在途径结构。从基础和概念的角度来看,这一进展意义重大,因为与基于我们对生化过程的知识的历史发展而产生的定义相比,它给出了生化途径的整体定义。此外,这个新的概念框架对于根据关于细胞功能的快速增长的信息来定义、表征和研究生化途径将非常重要。