复杂性理论在理解大脑神经元-神经胶质相互作用中的作用

IF 2.4 4区 医学 Q3 NEUROSCIENCES European Journal of Neuroscience Pub Date : 2025-03-12 DOI:10.1111/ejn.70050
M. Di Chiano, P. Milior, Y. Poulot-Becq-Giraudon, R. Lanfredini, G. Milior
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引用次数: 0

摘要

大脑信息处理的复杂性通常被认为来源于神经元的活动,神经元及其动态信号负责信息的传递和处理。然而,大脑还包含其他非神经元细胞,神经胶质细胞,它们的数量超过神经元,并参与与神经网络信息编码和潜在大脑功能相关的过程。胶质细胞在分子和生理特性表征方面的决定性进展揭示了它们在神经传递和神经元生理病理中的积极作用。神经元和神经胶质之间的这种扩展关系通过强调它们的相互影响来挑战传统的神经生物学,其中很难确定是神经元过程还是神经胶质过程启动和驱动相互作用。这种相互作用造成了一个困境,这两种细胞类型之间的因果关系仍然没有得到解决。作为一种哲学工具,Edgard Morin的“复杂性理论”可以帮助我们更好地解释和研究神经元-神经胶质相互作用的复杂性。Morin关于复杂性的提出有助于转换脑知识,以反还原论的模式来审视脑的分子功能。在本文中,我们将讨论如何在大脑分子水平上使用Morin的“复杂性理论”中的“回溯回路”原理,提出一个新的哲学实验网格,可以帮助神经科学家更好地理解大脑中神经胶质-神经元的相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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The Role of Complexity Theory in Understanding Brain's Neuron–Glia Interactions

Brain information processing complexity is conventionally recognized as derived from neuronal activity, with neurons and their dynamic signalling responsible for the transfer and processing of information. However, the brain also contains other non-neuronal cells, glial cells, which exceed the number of neurons and are involved in the processes related with information coding by neural networks and underlying brain functions. Decisive advances in the characterization of the molecular and physiological properties of glial cells shed light on their active roles in neurotransmission and neuronal physiopathology. This expanded relationship between neurons and glia challenges traditional neurobiology by highlighting their reciprocal influence, where it is difficult to determine whether neuronal or glial processes initiate and drive the interactions. This interplay creates a dilemma, where the causal hierarchy between these two cell types remains unresolved. A philosophical tool, the ‘Theory of Complexity’ of Edgard Morin can help to better explain and study the complexity of neuron–glia interactions. Morin's proposal on complexity is useful to transform brain knowledge, in order to review the brain molecular functions in antireductionist pattern. In this manuscript, we will discuss how to use the ‘retroactive loop’ principle from Morin's ‘Theory of Complexity’ at the brain molecular level, proposing a new philosophical-experimental grid that can help neuroscientists for a better understanding of the glia–neuron interactions in the brain.

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来源期刊
European Journal of Neuroscience
European Journal of Neuroscience 医学-神经科学
CiteScore
7.10
自引率
5.90%
发文量
305
审稿时长
3.5 months
期刊介绍: EJN is the journal of FENS and supports the international neuroscientific community by publishing original high quality research articles and reviews in all fields of neuroscience. In addition, to engage with issues that are of interest to the science community, we also publish Editorials, Meetings Reports and Neuro-Opinions on topics that are of current interest in the fields of neuroscience research and training in science. We have recently established a series of ‘Profiles of Women in Neuroscience’. Our goal is to provide a vehicle for publications that further the understanding of the structure and function of the nervous system in both health and disease and to provide a vehicle to engage the neuroscience community. As the official journal of FENS, profits from the journal are re-invested in the neuroscientific community through the activities of FENS.
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