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Integrity Assessment of a Hybrid DBS Probe that Enables Neurotransmitter Detection Simultaneously to Electrical Stimulation and Recording

机译:混合DBS探针的完整性评估该探针能够同时对电刺激和记录进行神经递质检测

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摘要

Deep brain stimulation (DBS) is a successful medical therapy for many treatment resistant neuropsychiatric disorders such as movement disorders; e.g., Parkinson’s disease, Tremor, and dystonia. Moreover, DBS is becoming more and more appealing for a rapidly growing number of patients with other neuropsychiatric diseases such as depression and obsessive compulsive disorder. In spite of the promising outcomes, the current clinical hardware used in DBS does not match the technological standards of other medical applications and as a result could possibly lead to side effects such as high energy consumption and others. By implementing more advanced DBS devices, in fact, many of these limitations could be overcome. For example, a higher channels count and smaller electrode sites could allow more focal and tailored stimulation. In addition, new materials, like carbon for example, could be incorporated into the probes to enable adaptive stimulation protocols by biosensing neurotransmitters in the brain. Updating the current clinical DBS technology adequately requires combining the most recent technological advances in the field of neural engineering. Here, a novel hybrid multimodal DBS probe with glassy carbon microelectrodes on a polyimide thin-film device assembled on a silicon rubber tubing is introduced. The glassy carbon interface enables neurotransmitter detection using fast scan cyclic voltammetry and electrophysiological recordings while simultaneously performing electrical stimulation. Additionally, the presented DBS technology shows no imaging artefacts in magnetic resonance imaging. Thus, we present a promising new tool that might lead to a better fundamental understanding of the underlying mechanism of DBS while simultaneously paving our way towards better treatments.
机译:深部脑刺激(DBS)是一种成功的药物疗法,可用于治疗许多抵抗力强的神经精神疾病,例如运动障碍;例如帕金森氏病,震颤和肌张力障碍。此外,DBS对于越来越多的患有其他神经精神疾病(例如抑郁症和强迫症)的患者越来越有吸引力。尽管取得了可喜的结果,但DBS中使用的当前临床硬件与其他医疗应用的技术标准不匹配,因此可能导致副作用,例如高能耗等。实际上,通过实施更高级的DBS设备,可以克服许多限制。例如,较高的通道数和较小的电极位置可允许更多的聚焦和定制的刺激。此外,可以将新材料(例如碳)掺入探针中,以通过生物传感大脑中的神经递质来实现自适应刺激方案。要充分更新当前的临床DBS技术,需要结合神经工程领域的最新技术进步。在此,介绍了一种新颖的混合多峰DBS探针,该探针在玻璃硅微管上组装的聚酰亚胺薄膜器件上具有玻璃碳微电极。玻碳界面可使用快速扫描循环伏安法和电生理记录进行神经递质检测,同时执行电刺激。此外,提出的DBS技术在磁共振成像中未显示任何伪像。因此,我们提出了一种有前途的新工具,它可能会导致人们对DBS的基本机制有更好的基本了解,同时也为我们提供更好的治疗方法。

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