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基因调控网络中条件期望的代数表达式。

Algebraic expressions of conditional expectations in gene regulatory networks.

作者信息

Sunkara Vikram

机构信息

Computational Medicine, Zuse Institute Berlin, 14195, Berlin, Germany.

Department of Mathematics and Computer Science, Freie Universität Berlin, 14195, Berlin, Germany.

出版信息

J Math Biol. 2019 Oct;79(5):1779-1829. doi: 10.1007/s00285-019-01410-y. Epub 2019 Aug 3.

Abstract

Gene Regulatory Networks are powerful models for describing the mechanisms and dynamics inside a cell. These networks are generally large in dimension and seldom yield analytical formulations. It was shown that studying the conditional expectations between dimensions (interactions or species) of a network could lead to drastic dimension reduction. These conditional expectations were classically given by solving equations of motions derived from the Chemical Master Equation. In this paper we deviate from this convention and take an Algebraic approach instead. That is, we explore the consequences of conditional expectations being described by a polynomial function. There are two main results in this work. Firstly, if the conditional expectation can be described by a polynomial function, then coefficients of this polynomial function can be reconstructed using the classical moments. And secondly, there are dimensions in Gene Regulatory Networks which inherently have conditional expectations with algebraic forms. We demonstrate through examples, that the theory derived in this work can be used to develop new and effective numerical schemes for forward simulation and parameter inference. The algebraic line of investigation of conditional expectations has considerable scope to be applied to many different aspects of Gene Regulatory Networks; this paper serves as a preliminary commentary in this direction.

摘要

基因调控网络是用于描述细胞内部机制和动态的强大模型。这些网络通常维度很大,很少能得出解析公式。研究表明,研究网络维度之间(相互作用或物种)的条件期望可以大幅降低维度。这些条件期望传统上是通过求解从化学主方程导出的运动方程来给出的。在本文中,我们偏离了这一传统,转而采用代数方法。也就是说,我们探讨了用多项式函数描述条件期望的结果。这项工作有两个主要成果。首先,如果条件期望可以用多项式函数描述,那么这个多项式函数的系数可以用经典矩来重构。其次,基因调控网络中存在一些维度,其固有地具有代数形式的条件期望。我们通过例子证明,本文推导的理论可用于开发用于正向模拟和参数推断的新的有效数值方案。对条件期望的代数研究方向在基因调控网络的许多不同方面有相当大的应用范围;本文是朝着这个方向的初步评论。

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