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首页> 外文期刊>Scientific reports. >Simultaneous electrophysiological and morphological assessment of functional damage to neural networks in vitro after 30–300?g impacts
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Simultaneous electrophysiological and morphological assessment of functional damage to neural networks in vitro after 30–300?g impacts

机译:在30-300后,在体外同时电生理和形态学评估神经网络的影响

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摘要

An enigma of mild traumatic brain injury are observations of substantial behavior and performance deficits in the absence of bleeding or other observable structural damage. Altered behavior and performance reflect changes in action potential (AP) patterns within neuronal networks, which could result from subtle subcellular responses that affect synaptic efficacy and AP production. The aim of this study was to investigate and quantify network activity changes after simulated concussions in vitro and therewith develop a platform for simultaneous and direct observations of morphological and electrophysiological changes in neural networks. We used spontaneously active networks grown on microelectrode arrays (MEAs) to allow long-term multisite monitoring with simultaneous optical observations before and after impacts delivered by a ballistic pendulum (30 to 300?g accelerations). The monitoring of AP waveshape templates for long periods before and after impact provided an internal control for cell death or loss of cell-electrode coupling in the observed set of neurons. Network activity patterns were linked in real-time to high power phase contrast microscopy. There was no overt loss of glial or neuronal adhesion, even at high-g impacts. All recording experiments showed repeatable spike production responses: a loss of activity with recovery to near reference in 1?hr, followed by a slow activity decay to a stable, level plateau approximately 30-40% below reference. The initial recovery occurred in two steps: a rapid return of activity to an average 24% below reference, forming a level plateau lasting from 5 to 20?min, followed by a climb to within 10% of reference where a second plateau was established for 1 to 2 hrs. Cross correlation profiles revealed changes in firing hierarchy as well as in Phase 1 in spontaneous network oscillations that were reduced by as much as 20% 6-8?min post impact with only a partial recovery at 30?min. We also observed that normally stable nuclei developed irregular rotational motion after impact in 27 out of 30 networks. The evolution of network activity deficits and recovery can be linked with microscopically observable changes in the very cells that are generating the activity. The repeatable electrophysiological impact response profiles and oscillation changes can provide a quantitative basis for systematic evaluations of pharmacological intervention strategies. Future expansion to include fluorescent microscopy should allow detailed investigations of damage mechanisms on the subcellular level.
机译:轻度创伤性脑损伤的谜是在没有出血或其他可观察的结构损伤的情况下观察大量行为和性能缺陷。改变的行为和性能反映了神经网络中的动作电位(AP)模式的变化,这可能是影响突触疗效和AP产生的细微亚细胞反应。本研究的目的是在体外模拟脑震荡后调查和量化网络活性变化,以及发发了一个同时和直接观察神经网络的形态学和电生理变化的平台。我们使用在微电极阵列(MEA)上生长的自发活动网络(MEAS),以允许长期多部监测,并在弹道摆在弹性摆动(30至300μg加速)输送之前和之后的同时光学观察。冲击前后长时间的AP波浪模板的监测提供了在观察到的神经元中的细胞死亡或细胞 - 电极耦合的内部控制。网络活动模式实时链接到高功率相位对比显微镜。即使在高G的影响下,也没有明显的胶质或神经元粘附性。所有记录实验均显示可重复的尖峰生产响应:恢复到近引用的活性损失1?HR,其次是稳定的慢速,水平高原的缓慢,大约30-40%以下。最初的恢复发生在两个步骤:活动的快速回报到平均参考的24%,形成一个水平高原从5到20?min,其次攀升至10%的参考范围内,建立了第二高原的10% 1到2小时。交叉相关性曲线显示出射击层次结构的变化以及在自发网络振荡中的阶段1中减少多达20%6-8?MIN后撞击,只有30?min的部分恢复。我们还观察到,通常在30个网络中的27个内部冲击后,通常稳定的核产生不规则的旋转运动。网络活动缺陷和恢复的演变可以与产生活动的非常细胞中的微观观察变化相关联。可重复的电生理冲击响应谱和振荡变化可以为药理学干预策略的系统评估提供定量依据。未来扩展包括荧光显微镜应允许详细研究亚细胞水平的损伤机制。

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