...
首页> 外文期刊>Journal of Neurophysiology >Contribution of action potentials to the extracellular field potential in the nucleus laminaris of barn owl
【24h】

Contribution of action potentials to the extracellular field potential in the nucleus laminaris of barn owl

机译:作用潜力对谷仓猫头鹰核底层的细胞外场电位的贡献

获取原文
获取原文并翻译 | 示例
           

摘要

Extracellular field potentials (EFP) are widely used to evaluate in vivo neural activity, but identification of multiple sources and their relative contributions is often ambiguous, making the interpretation of the EFP difficult. We have therefore analyzed a model EFP from a simple brainstem circuit with separable pre- and postsynaptic components to determine whether we could isolate its sources. Our previous papers had shown that the barn owl neurophonic largely originates with spikes from input axons and synapses that terminate on the neurons in the nucleus laminaris (NL) (Kuokkanen PT, Wagner H, Ashida G, Carr CE, Kempter R. J Neurophysiol 104: 2274-2290, 2010; Kuokkanen PT, Ashida G, Carr CE, Wagner H, Kempter R. J Neurophysiol 110: 117-130, 2013; McColgan T, Liu J, Kuokkanen PT, Carr CE, Wagner H, Kempter R. eLife 6: e26106, 2017). To determine how much the postsynaptic NL neurons contributed to the neurophonic, we recorded EFP responses in NL in vivo. Power spectral analyses showed that a small spectral component of the evoked response, between 200 and 700 Hz, could be attributed to the NL neurons' spikes, while nucleus magnocellularis (NM) spikes dominate the EFP at frequencies greater than or similar to 1 kHz. Thus, spikes of NL neurons and NM axons contribute to the EFP in NL in distinct frequency bands. We conclude that if the spectral components of source types are different and if their activities can be selectively modulated, the identification of EFP sources is possible.
机译:细胞外场电位(EFP)被广泛用于评估体内神经活动,但识别多种来源及其相对贡献通常是模糊的,这使得对EFP的解释难以沉重。因此,我们从一个简单的脑干电路分析了一个具有可分离的预先和突触后组件的模型EFP,以确定我们是否可以隔离其来源。我们之前的论文表明,谷仓猫头鹰神经电泳主要来自输入轴突的尖峰和终止于核心Laminaris(NL)中的神经元(Kuokkanen Pt,瓦格纳H,Ashida G,Carr Ce,Kempter R.J Neurophysiol 104 :2010年,2010年; Kuokkanen Pt,Ashida G,Carr Ce,Wagner H,Kempter R.J Neurophysiol 110:117-130,2013; McColgan T,Liu J,Kuokkanen Pt,Carr Ce,Wagner H,Kempter R. Elife 6:E26106,2017)。为了确定突触后的NL神经元对神经电泳的贡献程度,我们在体内记录了NL中的EFP反应。功率谱分析表明,诱发反应的小光谱分量在200和700Hz之间,可以归因于NL神经元的尖峰,而Nucleus Magnocellularis(NM)峰值将EFP置于大于或类似于1kHz的频率。因此,NL神经元和NM轴突的尖峰在不同的频带中有助于NL中的EFP。我们得出结论,如果源类型的光谱分量不同,并且如果可以选择性地调制它们的活动,则可以识别EFP源。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 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