设计一种用于清醒啮齿动物在脑刺激时行为测试的装置

Alexander Farnum, Wen Li, L. Udpa, Basti Bharath Shenoy, G. Pelled
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引用次数: 1

摘要

神经刺激技术已被证明在促进不同神经系统疾病和损伤的恢复、减轻疾病症状和提高生活质量方面是有效的。人们对开发神经刺激作为最终导致视觉障碍的疾病的视觉修复术越来越感兴趣。然而,有证据表明,在视觉神经刺激的主要目标视觉皮层、视网膜和视神经中植入电极会导致组织损伤,非特异性刺激和低感知空间分辨率,无法再现原始图像。我们最近开发了一种创新的,非侵入性的方法来控制细胞功能使用电磁感知基因(EPG)。这种基于磁发生学的技术补充了现有的神经刺激技术,并为细胞特异性、时间特异性、位置特异性和非侵入性神经刺激提供了一种新的方法。我们致力于开发一种仪器,允许在磁生刺激视觉皮层时对清醒的大鼠进行行为测试。我们设计并制造了一种新的啮齿动物行为装置,该装置使用非导电和有色材料与头部进行直接和可控的接触。这个装置允许大鼠根据视觉线索和磁生刺激按下两个杠杆中的一个。此外,这种新设备将允许测试由其他神经刺激装置控制的皮层刺激的行为反应,包括非侵入性脑刺激、光遗传学、超声波和清醒、受限大鼠的电极。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Designing an apparatus for behavioral testing in awake rodents during brain stimulation
Neurostimulation technologies have been shown to be effective in promoting recovery, alleviating disease symptoms, and enhancing quality of life in different neurological diseases and injuries. There is growing interest in developing neurostimulation as visual prosthetics for diseases that ultimately lead to visual impairments. However, evidence shows that the implantation of electrodes in the visual cortex, retina, and optic nerve which are the primary targets for visual-based neurostimulation, can induce tissue damage unspecific stimulation and low perceptual spatial resolution to reproduce original images. We have recently developed an innovative, non-invasive method to control cellular function using the electromagnetic-perceptive gene (EPG). This magnetogenetic-based technology complements the existing arsenal of neurostimulation technologies and provides a novel approach for cell-specific, temporal-specific, location-specific and non-invasive neurostimulation. We worked towards developing an apparatus that will allow for behavioral testing in awake rats during magnetogenetic stimulation of the visual cortex. We designed and built a new behavioral rodent apparatus that provides direct and controlled contact with the head using non-conductive and non-ferrous materials. This apparatus allows the rat to press one of two levers depending on visual cues and magnetogenetic stimulation. In addition, this new apparatus will allow for testing of behavioral responses to cortical stimulation controlled by other neurostimulation devices, including non-invasive brain stimulation, optogenetics, ultrasound, and electrodes in awake, restrained rats.
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