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一种稳态调节的功能方法。

A functional approach to homeostatic regulation.

作者信息

Arias Clemente F, Acosta Francisco J, Bertocchini Federica, Fernández-Arias Cristina

机构信息

Grupo Interdisciplinar de Sistemas Complejos de Madrid (GISC), 28040, Madrid, Spain.

Departamento de Ecología, Universidad Complutense de Madrid, 28040, Madrid, Spain.

出版信息

Biol Direct. 2024 Dec 22;19(1):134. doi: 10.1186/s13062-024-00577-9.

Abstract

In this work, we present a novel modeling framework for understanding the dynamics of homeostatic regulation. Inspired by engineering control theory, this framework incorporates unique features of biological systems. First, biological variables often play physiological roles, and taking this functional context into consideration is essential to fully understand the goals and constraints of homeostatic regulation. Second, biological signals are not abstract variables, but rather material molecules that may undergo complex turnover processes of synthesis and degradation. We suggest that the particular nature of biological signals may condition the type of information they can convey, and their potential role in shaping the dynamics and the ultimate purpose of homeostatic systems. We show that the dynamic interplay between regulated variables and control signals is a key determinant of biological homeostasis, challenging the necessity and the convenience of strictly extrapolating concepts from engineering control theory in modeling the dynamics of homeostatic systems. This work provides a simple, unified framework for studying biological regulation and identifies general principles that transcend molecular details of particular homeostatic mechanisms. We show how this approach can be naturally applied to apparently different regulatory systems, contributing to a deeper understanding of homeostasis as a fundamental process in living systems.

摘要

在这项工作中,我们提出了一个用于理解稳态调节动态过程的新型建模框架。受工程控制理论启发,该框架融合了生物系统的独特特征。首先,生物变量通常发挥生理作用,考虑这一功能背景对于全面理解稳态调节的目标和限制至关重要。其次,生物信号并非抽象变量,而是可能经历合成与降解等复杂周转过程的物质分子。我们认为,生物信号的特殊性质可能决定它们能够传递的信息类型,以及它们在塑造稳态系统动态过程和最终目的方面的潜在作用。我们表明,调节变量与控制信号之间的动态相互作用是生物稳态的关键决定因素,这对在建模稳态系统动态过程时严格从工程控制理论推断概念的必要性和便利性提出了挑战。这项工作为研究生物调节提供了一个简单、统一的框架,并确定了超越特定稳态机制分子细节的一般原则。我们展示了这种方法如何能够自然地应用于看似不同的调节系统,有助于更深入地理解稳态作为生命系统中的一个基本过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eef6/11663359/a664084499d2/13062_2024_577_Fig1_HTML.jpg

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