A dendrite is a dendrite is a dendrite? Dendritic signal integration beyond the "antenna" model.

IF 2.9 4区 医学 Q2 PHYSIOLOGY Pflugers Archiv : European journal of physiology Pub Date : 2024-08-09 DOI:10.1007/s00424-024-03004-0
Moritz Stingl, Andreas Draguhn, Martin Both
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Abstract

Neurons in central nervous systems receive multiple synaptic inputs and transform them into a largely standardized output to their target cells-the action potential. A simplified model posits that synaptic signals are integrated by linear summation and passive propagation towards the axon initial segment, where the threshold for spike generation is either crossed or not. However, multiple lines of research during past decades have shown that signal integration in individual neurons is much more complex, with important functional consequences at the cellular, network, and behavioral-cognitive level. The interplay between concomitant excitatory and inhibitory postsynaptic potentials depends strongly on the relative timing and localization of the respective synapses. In addition, dendrites contain multiple voltage-dependent conductances, which allow scaling of postsynaptic potentials, non-linear input processing, and compartmentalization of signals. Together, these features enable a rich variety of single-neuron computations, including non-linear operations and synaptic plasticity. Hence, we have to revise over-simplified messages from textbooks and use simplified computational models like integrate-and-fire neurons with some caution. This concept article summarizes the most important mechanisms of dendritic integration and highlights some recent developments in the field.

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树突就是树突?树突状信号整合超越 "天线 "模型
中枢神经系统中的神经元接收多个突触输入信号,并将其转化为基本标准化的输出信号(即动作电位)传递给靶细胞。一个简化模型假设,突触信号通过线性相加和被动传播整合到轴突起始节段,在该节段上,尖峰产生的阈值要么被跨越,要么未被跨越。然而,过去几十年的多项研究表明,单个神经元中的信号整合要复杂得多,会在细胞、网络和行为认知层面产生重要的功能性后果。同时发生的兴奋性突触后电位和抑制性突触后电位之间的相互作用在很大程度上取决于各自突触的相对时间和定位。此外,树突包含多个电压依赖性电导,可实现突触后电位的缩放、非线性输入处理和信号区隔。这些特点共同促成了丰富多样的单神经元计算,包括非线性操作和突触可塑性。因此,我们必须修改教科书中过于简化的信息,并谨慎使用整合-发射神经元等简化计算模型。这篇概念文章总结了树突整合最重要的机制,并重点介绍了该领域的一些最新进展。
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来源期刊
CiteScore
8.80
自引率
2.20%
发文量
121
审稿时长
4-8 weeks
期刊介绍: Pflügers Archiv European Journal of Physiology publishes those results of original research that are seen as advancing the physiological sciences, especially those providing mechanistic insights into physiological functions at the molecular and cellular level, and clearly conveying a physiological message. Submissions are encouraged that deal with the evaluation of molecular and cellular mechanisms of disease, ideally resulting in translational research. Purely descriptive papers covering applied physiology or clinical papers will be excluded. Papers on methodological topics will be considered if they contribute to the development of novel tools for further investigation of (patho)physiological mechanisms.
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