The Florey Institute of Neuroscience and Mental Health, The Florey Department of Neuroscience and Mental Health, University of Melbourne , Victoria 3052, Australia.
Philos Trans R Soc Lond B Biol Sci. 2024 Jul 29;379(1906):20230231. doi: 10.1098/rstb.2023.0231. Epub 2024 Jun 10.
Neurons are plastic. That is, they change their activity according to different behavioural conditions. This endows pyramidal neurons with an incredible computational power for the integration and processing of synaptic inputs. Plasticity can be investigated at different levels of investigation within a single neuron, from spines to dendrites, to synaptic input. Although most of our knowledge stems from the brain slice preparation, plasticity plays a vital role during behaviour by providing a flexible substrate for the execution of appropriate actions in our ever-changing environment. Owing to advances in recording techniques, the plasticity of neurons and the neural networks in which they are embedded is now beginning to be realized in the intact brain. This review focuses on the structural and functional synaptic plasticity of pyramidal neurons with a specific focus on the latest developments from studies. This article is part of a discussion meeting issue 'Long-term potentiation: 50 years on'.
神经元具有可塑性。也就是说,它们会根据不同的行为条件改变自身的活动。这使得锥体神经元具有令人难以置信的整合和处理突触输入的计算能力。可塑性可以在单个神经元的不同研究水平上进行研究,从树突棘到树突,再到突触输入。尽管我们的大部分知识都源于脑片制备,但可塑性通过为在不断变化的环境中执行适当的行为提供一个灵活的基质,在行为过程中起着至关重要的作用。由于记录技术的进步,神经元及其所嵌入的神经网络的可塑性现在开始在完整的大脑中得到体现。这篇综述主要关注锥体神经元的结构和功能突触可塑性,特别关注研究中的最新进展。本文是“长时程增强:50 年的探索”讨论会议议题的一部分。