Carbon Nanotube Nanoelectrode Array/Deep Brain Stimul.
碳纳米管纳米电极阵列/深部脑刺激。
基本信息
- 批准号:7016332
- 负责人:
- 金额:$ 11.26万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2005
- 资助国家:美国
- 起止时间:2005-02-15 至 2007-12-31
- 项目状态:已结题
- 来源:
- 关键词:bioimaging /biomedical imagingbiomedical equipment developmentbiosensor devicebrain electronic stimulatorbrain imaging /visualization /scanningbrain mappingelectrochemistrylaboratory ratmicroelectrodesminiature biomedical equipmentmonitoring devicenanomedicinenanotechnologyneurochemistrytissue /cell culture
项目摘要
DESCRIPTION (provided by applicant): Many common disorders of the nervous system are potentially treatable using techniques that employ precise, controlled electrical recording (for localization) and/or precise, controlled electrical stimulation (for modulation). An example is deep brain stimulation (DBS) for movement disorders (e.g. Parkinson's disease, which affects 1 million Americans). DBS is currently in clinical trials for conditions such as intractable epilepsy, depression, and eating disorders. Precise localization within the brain will also be essential for implantation of stem cells and other forms of transplantation when such methods reach clinical usefulness.
Nanoelectrodes offer the possibility of improving significantly our ability (1) to localize specific regions (subnuclei) of the brain, with the benefit of permanent implantation (which is not feasible in clinical situations with current microelectrodes), (2) to stimulate specific regions (subnuclei) of the brain much more precisely than is possible with current macroelectrodes, and (3) to monitor or record the local environments (neurotransmitter levels, e.g. dopamine and glutamate) with nanomolar sensitivity and millisecond temporal resolution yet with minimum disturbance using in situ electrochemical methods based on nanoelectrode arrays. The long-term goal is to establish a permanently-implanted closed-loop system where the monitoring of neurotransmitter levels and local brain electrical activity guides the local brain stimulation (neuromodulation).
The proposed work involves the development of nanoelectrode arrays specifically for precise, permanently implanted, local brain recording of electrical activity and neurotransmitter levels as well as stimulation. Following additional refinement and laboratory testing of 200 #m nanoelectrode arrays already developed, the porposed research utilizes cell cultures, brain tissue slices, and a standard small animal model of Parkinson's disease to test the prototype nanoelectrode arrays. This research plan extends and integrates the work done to date by the Nanotechnology and Smart Systems groups at NASA Ames Research Center: (1) nanoelectrode fabrication and application to the development of ultrasensitive biosensors, and (2) real-time tissue recognition using multiple microsensors and neural networks to determine a unique "signature" for both tissues (normal and abnormal) and regions (subnuclei) of the brain.
描述(由申请人提供):许多常见的神经系统疾病可以使用采用精确的、受控的电记录(用于定位)和/或精确的、受控的电刺激(用于调制)的技术来治疗。一个例子是针对运动障碍(例如影响 100 万美国人的帕金森病)的深部脑刺激 (DBS)。 DBS 目前正在进行针对顽固性癫痫、抑郁症和饮食失调等疾病的临床试验。当这些方法达到临床用途时,大脑内的精确定位对于干细胞植入和其他形式的移植也至关重要。
纳米电极可以显着提高我们的能力(1)定位大脑的特定区域(亚核),并具有永久植入的好处(这在当前微电极的临床情况下是不可行的),(2)刺激特定区域(比当前的大电极更精确地检测大脑的亚核),并且(3)以纳摩尔级灵敏度监测或记录局部环境(神经递质水平,例如多巴胺和谷氨酸)使用基于纳米电极阵列的原位电化学方法,可以实现毫秒时间分辨率,但干扰最小。长期目标是建立一个永久植入的闭环系统,通过监测神经递质水平和局部脑电活动来指导局部脑刺激(神经调节)。
拟议的工作涉及开发纳米电极阵列,专门用于精确、永久植入、局部大脑记录电活动、神经递质水平以及刺激。在对已开发的 200 #m 纳米电极阵列进行额外的改进和实验室测试后,该研究利用细胞培养物、脑组织切片和帕金森病的标准小动物模型来测试原型纳米电极阵列。该研究计划扩展并整合了 NASA 艾姆斯研究中心纳米技术和智能系统小组迄今为止所做的工作:(1) 纳米电极制造和应用于超灵敏生物传感器的开发,以及 (2) 使用多个微传感器进行实时组织识别和神经网络来确定大脑组织(正常和异常)和区域(亚核)的独特“特征”。
项目成果
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