首页> 外文期刊>Frontiers in Neuroscience >Optimised PDMS Tunnel Devices on MEAs Increase the Probability of Detecting Electrical Activity from Human Stem Cell-Derived Neuronal Networks
【24h】

Optimised PDMS Tunnel Devices on MEAs Increase the Probability of Detecting Electrical Activity from Human Stem Cell-Derived Neuronal Networks

机译:在MEA上优化的PDMS隧道设备可提高从人类干细胞衍生的神经元网络检测电活动的可能性

获取原文
       

摘要

Measurement of the activity of human pluripotent stem cell (hPSC)-derived neuronal networks with microelectrode arrays (MEAs) plays an important role in functional in vitro brain modelling and in neurotoxicological screening. The previously reported hPSC-derived neuronal networks do not, however, exhibit repeatable, stable functional network characteristics similar to rodent cortical cultures, making the interpretation of results difficult. In earlier studies, microtunnels have been used both to control and guide cell growth and amplify the axonal signals of rodent neurons. The aim of the current study was to develop tunnel devices that would facilitate signalling and/or signal detection in entire hPSC-derived neuronal networks containing not only axons, but also somata and dendrites. Therefore, MEA-compatible polydimethylsiloxane (PDMS) tunnel devices with 8 different dimensions were created. The hPSC-derived neurons were cultured in the tunnel devices on MEAs, and the spontaneous electrical activity of the networks was measured for 5 weeks. Although the tunnel devices improved the signal-to-noise ratio only by 1.3-fold at best, they significantly increased the percentage of electrodes detecting neuronal activity (52–100%) compared with the controls (27%). Significantly higher spike and burst counts were also obtained using the tunnel devices. Neuronal networks inside the tunnels were amenable to pharmacological manipulation. The results suggest that tunnel devices encompassing the entire neuronal network can increase the measured spontaneous activity in hPSC-derived neuronal networks on MEAs. Therefore, they can increase the efficiency of functional studies of hPSC-derived networks on MEAs.
机译:用微电极阵列(MEA)测量人多能干细胞(hPSC)衍生的神经元网络的活性在体外脑功能建模和神经毒理学筛选中起着重要作用。但是,先前报道的hPSC衍生的神经元网络没有显示出与啮齿动物皮层培养相似的可重复的,稳定的功能网络特征,从而难以解释结果。在较早的研究中,微隧道已被用于控制和引导细胞生长并放大啮齿动物神经元的轴突信号。当前研究的目的是开发隧道设备,该设备将促进整个hPSC衍生的神经元网络中不仅包含轴突,还包含躯干和树突的信号和/或信号检测。因此,创建了具有8种不同尺寸的MEA兼容的聚二甲基硅氧烷(PDMS)隧道器件。在MEA上的隧道设备中培养源自hPSC的神经元,并测量网络的自发电活动5周。尽管隧道设备最多只能将信噪比提高1.3倍,但与对照组(27%)相比,它们显着增加了检测神经元活动的电极百分比(52-100%)。使用隧道设备还可以获得明显更高的尖峰和突发计数。隧道内的神经元网络可以进行药理处理。结果表明,涵盖整个神经元网络的隧道设备可以增加MEAs上hPSC衍生的神经元网络中自发活动的测量值。因此,它们可以提高hPSC衍生的网络在MEA上的功能研究效率。

著录项

相似文献

  • 外文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号