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脑震荡性脑损伤后齿状回回路及行为模式分离的早期缺陷

Early Deficits in Dentate Circuit and Behavioral Pattern Separation after Concussive Brain Injury.

作者信息

Corrubia Lucas, Huang Andrew, Nguyen Susan, Shiflett Michael W, Jones Mathew V, Ewell Laura A, Santhakumar Vijayalakshmi

机构信息

Department of Pharmacology, Physiology and Neuroscience, Rutgers New Jersey Medical School, Newark, New Jersey 07103.

Department of Molecular, Cell and Systems Biology, University of California Riverside, Riverside, California 92521.

出版信息

bioRxiv. 2023 Sep 17:2023.06.22.546120. doi: 10.1101/2023.06.22.546120.

Abstract

Traumatic brain injury leads to cellular and circuit changes in the dentate gyrus, a gateway to hippocampal information processing. Intrinsic granule cell firing properties and strong feedback inhibition in the dentate are proposed as critical to its ability to generate unique representation of similar inputs by a process known as pattern separation. Here we evaluate the impact of brain injury on cellular decorrelation of temporally patterned inputs in slices and behavioral discrimination of spatial locations one week after concussive lateral fluid percussion injury (FPI) in mice. Despite posttraumatic increases in perforant path evoked excitatory drive to granule cells and enhanced ΔFosB labeling, indicating sustained increase in excitability, the reliability of granule cell spiking was not compromised after FPI. Although granule cells continued to effectively decorrelate output spike trains recorded in response to similar temporally patterned input sets after FPI, their ability to decorrelate highly similar input patterns was reduced. In parallel, encoding of similar spatial locations in a novel object location task that involves the dentate inhibitory circuits was impaired one week after FPI. Injury induced changes in pattern separation were accompanied by loss of somatostatin expressing inhibitory neurons in the hilus. Together, these data suggest that the early posttraumatic changes in the dentate circuit undermine dentate circuit decorrelation of temporal input patterns as well as behavioral discrimination of similar spatial locations, both of which could contribute to deficits in episodic memory.

摘要

创伤性脑损伤会导致齿状回中的细胞和神经回路发生变化,而齿状回是海马体信息处理的门户。齿状回中内在颗粒细胞的放电特性以及强烈的反馈抑制作用,被认为对于其通过一种称为模式分离的过程来生成相似输入的独特表征的能力至关重要。在此,我们评估了脑损伤对小鼠遭受震荡性侧方流体冲击伤(FPI)一周后切片中时间模式输入的细胞去相关作用以及空间位置行为辨别能力的影响。尽管创伤后穿通通路诱发的对颗粒细胞的兴奋性驱动增加,且ΔFosB标记增强,表明兴奋性持续升高,但FPI后颗粒细胞放电的可靠性并未受到损害。虽然FPI后颗粒细胞在响应相似的时间模式输入集时记录的输出尖峰序列仍能有效地去相关,但它们对高度相似输入模式的去相关能力有所降低。同时,在一项涉及齿状回抑制性回路的新物体位置任务中,FPI一周后对相似空间位置的编码受到损害。损伤诱导的模式分离变化伴随着门区中表达生长抑素的抑制性神经元的丧失。总之,这些数据表明,创伤后早期齿状回回路的变化破坏了齿状回回路对时间输入模式的去相关作用以及对相似空间位置的行为辨别能力,这两者都可能导致情景记忆缺陷。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b6cf/10515770/f726edca9f83/nihpp-2023.06.22.546120v2-f0001.jpg

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