Dynamic changes in the hippocampal neuronal circuits activity following acute stress revealed by miniature fluorescence microscopy imaging.

IF 3.3 3区 医学 Q2 NEUROSCIENCES
Evgenii Gerasimov, Ekaterina Pchitskaya, Olga Vlasova, Ilya Bezprozvanny
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引用次数: 0

Abstract

Coordinated activity of neuronal ensembles is a basis for information processing in the brain. Recent development of miniscope imaging technology enabled recordings of neuronal circuits activity in vivo in freely behaving animals. Acute stress is believed to affect various hippocampal functions, especially memory. In the current study, we utilized miniscope imaging to investigate the hippocampal neuronal circuits properties in a mouse as function of time and immediately in response to an acute stress, induced by passive restraint, 3 h and 10 days after. Comprehensive quantitative analysis of network activity changes at the neuronal ensembles level revealed highly stable neuronal activity parameters, which exhibited a rapid and robust shift in response to acute stress stimulation. This shift was accompanied by the restructuring of the pairwise-correlated neuronal pairs. Remarkably, we discovered that ensembles activity characteristics returned to the initial state following recovery period, demonstrating hippocampal homeostatic stability at the neuronal circuits level. Obtained results provide an evidence about hippocampal neuronal ensembles activity in response to acute stress over time.

小型荧光显微镜成像显示急性应激后海马神经元回路活动的动态变化。
神经元群的协调活动是大脑信息处理的基础。显微成像技术的最新发展使得在自由行为的动物体内记录神经元回路的活动成为可能。急性压力被认为会影响海马体的各种功能,尤其是记忆。在当前的研究中,我们利用显微镜成像研究了小鼠在被动约束诱导的急性应激后3小时和10天的海马神经元回路特性随时间的变化和立即反应。对神经网络活动变化的综合定量分析显示,神经元活动参数高度稳定,在急性应激刺激下表现出快速而稳健的变化。这种转变伴随着成对相关神经元对的重组。值得注意的是,我们发现,在恢复期后,合群的活动特征恢复到初始状态,证明了海马在神经元回路水平上的稳态稳定性。所获得的结果提供了一个证据,海马神经元群系活动的反应急性应激随着时间的推移。
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来源期刊
Molecular Brain
Molecular Brain NEUROSCIENCES-
CiteScore
7.30
自引率
0.00%
发文量
97
审稿时长
>12 weeks
期刊介绍: Molecular Brain is an open access, peer-reviewed journal that considers manuscripts on all aspects of studies on the nervous system at the molecular, cellular, and systems level providing a forum for scientists to communicate their findings. Molecular brain research is a rapidly expanding research field in which integrative approaches at the genetic, molecular, cellular and synaptic levels yield key information about the physiological and pathological brain. These studies involve the use of a wide range of modern techniques in molecular biology, genomics, proteomics, imaging and electrophysiology.
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