从自构到自我优化:朝着一个生物调节的活性模型
Tom Froese1, Natalya Weber1, Ivan Shpurov1
1Embodied Cognitive Science Unit, Okinawa Institute of Science and Technology Graduate University, Tancha, Okinawa, Japan.
Bio Systems
|June 28, 2023
概括
积极的方法通过整合热力学和自我个性化概念来完善自构理论. 这种自我优化模型展示了系统如何向协调的约束满足方向进行重组,这可能与细胞生物学有关.
科学领域:
- 理论生物学 理论生物学
- 人工生命的人工生命
- 生命的起源 生命的起源
- 积极的方法 积极的方法
- 细胞生物学 细胞生物学
背景情况:
- 自体构造理论虽然具有影响力,但由于在推导可测试假设方面存在挑战,因此难以与主流生物学联系.
- 积极的方法通过定义可操作的概念,如不稳定性,适应性和代理性来推进自构.
研究的目的:
- 将热力学原理 (可逆性,不可逆性,路径依赖性) 与自我个性化的主动概念相结合.
- 提出一个自我优化模型,说明系统重组,以满足约束.
主要方法:
- 在主动框架内自构的概念发展.
- 热力学考虑与自我个性化概念相结合.
- 自我优化模型的开发和分析.
主要成果:
- 该模型展示了最小条件如何使系统自我重组.
- 结果显示,在系统层面上,趋向于协调的约束满足.
- 突出了自我个性化和热力学原理之间的相互作用.
结论:
- 通过热力学考虑增强的动态方法,提供了一条通往操作化自构的道路.
- 自我优化模型提供了一个理论桥梁,用于将动态概念与细胞生物学联系起来.
- 进一步的研究可以在具体的生物系统中探索这些抽象的发现.
相关概念视频
Operon Model
41
The operon model represents a fundamental mechanism of gene regulation in prokaryotes, enabling coordinated expression of genes involved in related metabolic or functional pathways. Operons consist of structural genes, a promoter, and an operator, with transcription regulated by repressors, activators, and small effector molecules.Structure and Function of OperonsAn operon is a cluster of structural genes transcribed together under the control of a single promoter. The promoter region...
41
Autoregulation of Blood Flow
2.4K
Autoregulation mechanisms are characterized by their inherent capacity for self-regulation without necessitating specific nervous stimulation or endocrine control. These mechanisms facilitate the adjustment of blood flow and, therefore, perfusion specific to each tissue region. This self-regulation encompasses chemical signals and myogenic controls.
Chemical Signaling in Autoregulation
Chemical signaling operates at the precapillary sphincter level, inciting either contraction or relaxation....
Chemical Signaling in Autoregulation
Chemical signaling operates at the precapillary sphincter level, inciting either contraction or relaxation....
2.4K
Regulation of Metabolism
9.5K
Cellular needs and conditions vary from cell to cell and change within individual cells over time. For example, the required enzymes and energetic demands of stomach cells are different from those of fat storage cells, skin cells, blood cells, and nerve cells. Furthermore, a digestive cell works much harder to process and break down nutrients during the time that closely follows a meal compared with many hours after a meal. As these cellular demands and conditions vary, so do the amounts and...
9.5K
Neural Regulation
39.6K
Digestion begins with a cephalic phase that prepares the digestive system to receive food. When our brain processes visual or olfactory information about food, it triggers impulses in the cranial nerves innervating the salivary glands and stomach to prepare for food.
39.6K
Positive and Negative Feedback Loops
19.5K
Animal organs and organ systems constantly adjust to internal and external changes through a process called homeostasis ("steady state"). Examples of these changes include regulation of the level of glucose or calcium in the blood or internal responses to external temperatures. Homeostasis requires maintaining an internal dynamic equilibrium:
19.5K
Non-equilibrium in the Cell
4.5K
An important concept in studying metabolism and energy is that of chemical equilibrium. Most chemical reactions are reversible. They can proceed in both directions, releasing energy into their environment in one direction, and absorbing it from the environment in the other direction. The same is true for the chemical reactions involved in cell metabolism, such as the breaking down and building up of proteins into and from individual amino acids, respectively. Reactants within a closed system...
4.5K


