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使用带摄像引导的电极微驱动器导航实现猕猴脑区的精确 3D 靶向定位。

Using camera-guided electrode microdrive navigation for precise 3D targeting of macaque brain sites.

机构信息

Cognitive Neuroscience Laboratory, German Primate Center, Goettingen, Lower Saxony, Germany.

Faculty of Biology and Psychology, Georg-August University, Goettingen, Lower Saxony, Germany.

出版信息

PLoS One. 2024 May 28;19(5):e0301849. doi: 10.1371/journal.pone.0301849. eCollection 2024.

Abstract

Spatial accuracy in electrophysiological investigations is paramount, as precise localization and reliable access to specific brain regions help the advancement of our understanding of the brain's complex neural activity. Here, we introduce a novel, multi camera-based, frameless neuronavigation technique for precise, 3-dimensional electrode positioning in awake monkeys. The investigation of neural functions in awake primates often requires stable access to the brain with thin and delicate recording electrodes. This is usually realized by implanting a chronic recording chamber onto the skull of the animal that allows direct access to the dura. Most recording and positioning techniques utilize this implanted recording chamber as a holder of the microdrive or to hold a grid. This in turn reduces the degrees of freedom in positioning. To solve this problem, we require innovative, flexible, but precise tools for neuronal recordings. We instead mount the electrode microdrive above the animal on an arch, equipped with a series of translational and rotational micromanipulators, allowing movements in all axes. Here, the positioning is controlled by infrared cameras tracking the location of the microdrive and the monkey, allowing precise and flexible trajectories. To verify the accuracy of this technique, we created iron deposits in the tissue that could be detected by MRI. Our results demonstrate a remarkable precision with the confirmed physical location of these deposits averaging less than 0.5 mm from their planned position. Pilot electrophysiological recordings additionally demonstrate the accuracy and flexibility of this method. Our innovative approach could significantly enhance the accuracy and flexibility of neural recordings, potentially catalyzing further advancements in neuroscientific research.

摘要

在电生理研究中,空间精度至关重要,因为精确的定位和可靠地访问特定脑区有助于我们深入理解大脑复杂的神经活动。在这里,我们介绍了一种新颖的、基于多摄像头的无框架神经导航技术,用于在清醒猴子中进行精确的三维电极定位。在清醒灵长类动物中研究神经功能通常需要稳定地进入大脑,使用细而精致的记录电极。这通常通过将一个慢性记录室植入动物的颅骨上来实现,该记录室允许直接接触硬脑膜。大多数记录和定位技术利用这个植入的记录室作为微驱动器的支架或用于固定网格。这反过来又减少了定位的自由度。为了解决这个问题,我们需要创新、灵活但精确的神经元记录工具。我们将电极微驱动器安装在动物上方的一个拱形结构上,该结构配备了一系列平移和旋转微操作器,允许在所有轴上移动。在这里,定位由跟踪微驱动器和猴子位置的红外摄像机控制,允许进行精确和灵活的轨迹。为了验证这项技术的准确性,我们在组织中产生了可以通过 MRI 检测到的铁沉积。我们的结果表明,这些沉积的实际位置与计划位置的平均偏差小于 0.5 毫米,精度非常高。初步的电生理记录进一步证明了这种方法的准确性和灵活性。我们的创新方法可以显著提高神经记录的准确性和灵活性,有可能推动神经科学研究的进一步发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/31db/11132476/289ee6a87ffb/pone.0301849.g001.jpg

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