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丰富环境调节海马脑片的尖波涟漪(SPW-R)活动。

Enriched Environment Modulates Sharp Wave-Ripple (SPW-R) Activity in Hippocampal Slices.

机构信息

Institute of Physiology and Pathophysiology, Heidelberg University, Heidelberg, Germany.

RG Animal Models in Psychiatry, Department of Psychiatry and Psychotherapy, Central Institute of Mental Health, Medical Faculty Mannheim, University of Heidelberg, Heidelberg, Germany.

出版信息

Front Neural Circuits. 2021 Dec 3;15:758939. doi: 10.3389/fncir.2021.758939. eCollection 2021.

Abstract

Behavioral flexibility depends on neuronal plasticity which forms and adapts the central nervous system in an experience-dependent manner. Thus, plasticity depends on interactions between the organism and its environment. A key experimental paradigm for studying this concept is the exposure of rodents to an enriched environment (EE), followed by studying differences to control animals kept under standard conditions (SC). While multiple changes induced by EE have been found at the cellular-molecular and cognitive-behavioral levels, little is known about EE-dependent alterations at the intermediate level of network activity. We, therefore, studied spontaneous network activity in hippocampal slices from mice which had previously experienced EE for 10-15 days. Compared to control animals from standard conditions (SC) and mice with enhanced motor activity (MC) we found several differences in sharp wave-ripple complexes (SPW-R), a memory-related activity pattern. Sharp wave amplitude, unit firing during sharp waves, and the number of superimposed ripple cycles were increased in tissue from the EE group. On the other hand, spiking precision with respect to the ripple oscillations was reduced. Recordings from single pyramidal cells revealed a reduction in synaptic inhibition during SPW-R together with a reduced inhibition-excitation ratio. The number of inhibitory neurons, including parvalbumin-positive interneurons, was unchanged. Altered activation or efficacy of synaptic inhibition may thus underlie changes in memory-related network activity patterns which, in turn, may be important for the cognitive-behavioral effects of EE exposure.

摘要

行为灵活性取决于神经元可塑性,神经元可塑性以经验依赖的方式形成和适应中枢神经系统。因此,可塑性取决于生物体与其环境之间的相互作用。研究这一概念的一个关键实验范例是使啮齿动物暴露于丰富环境 (EE) 中,然后研究与在标准条件 (SC) 下饲养的对照动物的差异。虽然已经在细胞-分子和认知-行为水平上发现了 EE 诱导的多种变化,但对网络活动中间水平上的 EE 依赖性改变知之甚少。因此,我们研究了先前经历过 10-15 天 EE 的小鼠海马切片中的自发网络活动。与来自标准条件 (SC) 的对照动物和运动活动增强的动物 (MC) 相比,我们在与记忆相关的活动模式的尖波-涟漪复合波 (SPW-R) 中发现了几个差异。EE 组组织中的尖波幅度、尖波期间的单位放电和叠加的涟漪周期数增加。另一方面,相对于涟漪振荡的尖峰精度降低。来自单个锥体神经元的记录显示,在 SPW-R 期间抑制性突触抑制减少,同时抑制-兴奋比降低。抑制性神经元的数量,包括阳性的 Parvalbumin 中间神经元,保持不变。突触抑制的改变的激活或功效可能是与记忆相关的网络活动模式变化的基础,而这反过来又可能是 EE 暴露对认知-行为影响的重要原因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/92e7/8678456/6c2e47f3a81c/fncir-15-758939-g0001.jpg

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