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The Convex Basis of the Left Null Space of the Stoichiometric Matrix Leads to the Definition of Metabolically Meaningful Pools

机译:化学计量矩阵左零空间的凸基导致了新陈代谢有意义池的定义

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摘要

The stoichiometric matrix, S, represents a mapping of reaction rate vectors into a space of concentration time derivatives. The left null space of the stoichiometric matrix contains the dynamic invariants: a combination of concentration variables, referred to as metabolic pools, whose total concentration does not change over time. By analogy to the traditional reaction map formed by S, a compound map can be derived from −ST. The analogy to flux analysis of the (right) null space of S enables us to classify the metabolic pools into three categories: Type A that contains chemical elements and their combinations in the form of certain moieties, Type B that contains such moieties in addition to cofactors carrying such moieties that are internal to the network, and Type C that contains only the cofactors. A convex formulation of the basis for the left null space allows us to directly classify the metabolic pools into these three categories. Type B metabolic pools include conservation pools that form conjugates of moiety-occupied and moiety-vacant concentration states of metabolites and cofactors. Type B metabolic pools thus describe the various states of moiety exchange between the primary substrates and the cofactors that capture properties like energy and redox potential. The convex basis gives clear insight into this exchange for glycolytic pathway in human red blood cell, including the identification of high and low energy pools that form conjugates. Examples suggest that pool maps may be more appropriate for signaling pathways than flux maps. The analysis of the left null space of the stoichiometric matrix allows us to define the achievable states of the cell and their physiological relevance.
机译:化学计量矩阵S代表反应速率向量到浓度时间导数空间的映射。化学计量矩阵的左侧零空间包含动态不变量:浓度变量的组合,称为代谢池,其总浓度不会随时间变化。与由S形成的传统反应图类似,可以从-ST导出化合物图。与S的(右)零空间的通量分析类似,我们可以将代谢库分为三类:A类包含化学元素及其以某些部分形式存在的组合; B类还包含此类部分网络内部带有此类部分的辅助因子,以及仅包含辅助因子的TypeC。左零空间的基础的凸表达使我们可以将代谢库直接分类为这三个类别。 B型代谢库包括形成代谢物和辅因子的部分占据和部分空置浓度状态的结合物的保守库。因此,B型代谢池描述了主要底物和捕获诸如能量和氧化还原电势等性质的辅因子之间部分交换的各种状态。凸基为人类红细胞糖酵解途径的这种交换提供了清晰的见识,包括鉴定形成结合物的高能和低能池。示例表明,池图可能比通量图更适合于信号通路。对化学计量矩阵的左零空间的分析使我们能够定义细胞的可实现状态及其生理相关性。

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