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新陈代谢、细胞与发育生物学中的动态模块

Dynamical modules in metabolism, cell and developmental biology.

作者信息

Jaeger Johannes, Monk Nick

机构信息

Complexity Science Hub (CSH) Vienna, Josefstädter Strasse 39, 1080 Vienna, Austria.

School of Mathematics and Statistics, University of Sheffield, Hicks Building, Sheffield S3 7RH, UK.

出版信息

Interface Focus. 2021 Apr 16;11(3):20210011. doi: 10.1098/rsfs.2021.0011. eCollection 2021 Jun 6.

Abstract

Modularity is an essential feature of any adaptive complex system. Phenotypic traits are modules in the sense that they have a distinguishable structure or function, which can vary (quasi-)independently from its context. Since all phenotypic traits are the product of some underlying regulatory dynamics, the generative processes that constitute the genotype-phenotype map must also be functionally modular. Traditionally, modular processes have been identified as structural modules in regulatory networks. However, structure only constrains, but does not determine, the dynamics of a process. Here, we propose an alternative approach that decomposes the behaviour of a complex regulatory system into elementary activity-functions. Modular activities can occur in networks that show no structural modularity, making dynamical modularity more widely applicable than structural decomposition. Furthermore, the behaviour of a regulatory system closely mirrors its functional contribution to the outcome of a process, which makes dynamical modularity particularly suited for functional decomposition. We illustrate our approach with numerous examples from the study of metabolism, cellular processes, as well as development and pattern formation. We argue that dynamical modules provide a shared conceptual foundation for developmental and evolutionary biology, and serve as the foundation for a new account of process homology, which is presented in a separate contribution by DiFrisco and Jaeger to this focus issue.

摘要

模块化是任何适应性复杂系统的基本特征。表型性状是模块,因为它们具有可区分的结构或功能,并且可以(准)独立于其背景而变化。由于所有表型性状都是某些潜在调控动态的产物,构成基因型-表型图谱的生成过程在功能上也必然是模块化的。传统上,模块化过程被认为是调控网络中的结构模块。然而,结构仅对过程的动态起到约束作用,而非决定性作用。在此,我们提出一种替代方法,即将复杂调控系统的行为分解为基本的活动函数。模块化活动可以出现在没有结构模块化的网络中,这使得动态模块化比结构分解具有更广泛的适用性。此外,调控系统的行为紧密反映其对过程结果的功能贡献,这使得动态模块化特别适合于功能分解。我们用代谢、细胞过程以及发育和模式形成研究中的大量例子来说明我们的方法。我们认为,动态模块为发育生物学和进化生物学提供了一个共同的概念基础,并为过程同源性的新解释奠定了基础,这一点在迪弗里斯科和耶格尔为本期焦点问题撰写的另一篇文章中有阐述。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/693e/8086940/0831fef2b9c1/rsfs20210011f01.jpg

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