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Multichannel Silicon Probes for Awake Hippocampal Recordings in Large Animals

机译:用于大型动物海马记录的多通道硅探针

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摘要

Decoding laminar information across deep brain structures and cortical regions is necessary in order to understand the neuronal ensembles that represent cognition and memory. Large animal models are essential for translational research due to their gyrencephalic neuroanatomy and significant white matter composition. A lack of long-length probes with appropriate stiffness allowing penetration to deeper structures with minimal damage to the neural interface is one of the major technical limitations to applying the approaches currently utilized in lower order animals to large animals. We therefore tested the performance of multichannel silicon probes of various solutions and designs that were developed specifically for large animal electrophysiology. Neurophysiological signals from dorsal hippocampus were recorded in chronically implanted awake behaving Yucatan pigs. Single units and local field potentials were analyzed to evaluate performance of given silicon probes over time. EDGE-style probes had the highest yields during intra-hippocampal recordings in pigs, making them the most suitable for chronic implantations and awake behavioral experimentation. In addition, the cross-sectional area of silicon probes was found to be a crucial determinant of silicon probe performance over time, potentially due to reduction of damage to the neural interface. Novel 64-channel EDGE-style probes tested acutely produced an optimal single unit separation and a denser sampling of the laminar structure, identifying these research silicon probes as potential candidates for chronic implantations. This study provides an analysis of multichannel silicon probes designed for large animal electrophysiology of deep laminar brain structures, and suggests that current designs are reaching the physical thresholds necessary for long-term (∼1 month) recordings with single-unit resolution.
机译:为了理解代表认知和记忆的神经元集合,有必要对深层大脑结构和皮质区域的层流信息进行解码。大型动物模型由于其脑脑神经解剖结构和大量的白质组成,因此对于转化研究至关重要。缺少具有适当刚度的长探针,以允许穿透到更深的结构而对神经界面的损害最小,这是将目前在低阶动物中使用的方法应用于大型动物的主要技术限制之一。因此,我们测试了针对大型动物电生理学开发的各种解决方案和设计的多通道硅探针的性能。在尤卡坦猪的长期植入清醒状态下,记录了海马背侧的神经生理信号。分析单个单位和局部场电势以评估给定硅探针随时间的性能。在猪海马内记录期间,EDGE式探针的产量最高,这使其最适合于慢性植入和清醒的行为实验。另外,发现硅探针的横截面积是硅探针性能随时间变化的关键决定因素,这可能是由于减少了对神经界面的损害。经过严格测试的新型64通道EDGE探针可产生最佳的单个单元分离效果,并能获得层状结构的更紧密采样,从而将这些研究性硅探针确定为潜在的长期植入候选物。这项研究对为深层脑结构的大型动物电生理学设计的多通道硅探针进行了分析,并表明当前的设计正达到以单单位分辨率进行长期(约1个月)记录所必需的物理阈值。

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