Microelectrode arrays in combination with in vitro models of spinal cord injury as tools to investigate pathological changes in network activity: facts and promises.

Frontiers in neuroengineering Pub Date : 2013-03-04 eCollection Date: 2013-01-01 DOI:10.3389/fneng.2013.00002
Miranda Mladinic, Andrea Nistri
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引用次数: 8

Abstract

Microelectrode arrays (MEAs) represent an important tool to study the basic characteristics of spinal networks that control locomotion in physiological conditions. Fundamental properties of this neuronal rhythmicity like burst origin, propagation, coordination, and resilience can, thus, be investigated at multiple sites within a certain spinal topography and neighboring circuits. A novel challenge will be to apply this technology to unveil the mechanisms underlying pathological processes evoked by spinal cord injury (SCI). To achieve this goal, it is necessary to fully identify spinal networks that make up the locomotor central pattern generator (CPG) and to understand their operational rules. In this review, the use of isolated spinal cord preparations from rodents, or organotypic spinal slice cultures is discussed to study rhythmic activity. In particular, this review surveys our recently developed in vitro models of SCI by evoking excitotoxic (or even hypoxic/dysmetabolic) damage to spinal networks and assessing the impact on rhythmic activity and cell survival. These pathological processes which evolve via different cell death mechanisms are discussed as a paradigm to apply MEA recording for detailed mapping of the functional damage and its time-dependent evolution.

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微电极阵列结合脊髓损伤体外模型作为研究神经网络活动病理变化的工具:事实和前景。
微电极阵列(MEAs)是研究生理状态下控制运动的脊髓网络基本特征的重要工具。这种神经元节律性的基本特性,如爆发的起源、传播、协调和恢复力,因此可以在特定脊髓地形和邻近电路的多个位点进行研究。应用这项技术揭示脊髓损伤(SCI)引起的病理过程的机制将是一个新的挑战。为了实现这一目标,有必要充分识别构成运动中枢模式发生器(CPG)的脊髓网络并了解其操作规则。在这篇综述中,我们讨论了使用从啮齿动物身上分离的脊髓制剂或器官型脊髓片培养来研究节律性活动。特别地,本文综述了我们最近开发的脊髓损伤体外模型,通过激发兴奋毒性(甚至缺氧/代谢异常)损伤脊髓网络,并评估其对节律活动和细胞存活的影响。这些通过不同细胞死亡机制进化的病理过程被讨论为应用MEA记录详细绘制功能损伤及其随时间变化的演变的范例。
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