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Electrochemical Techniques for Subsecond Neurotransmitter Detection in Live Rodents

机译:次生啮齿动物亚秒级神经递质检测的电化学技术

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Alterations in neurotransmission have been implicated in numerous neurodegenerative and neuropsychiatric disorders, including Alzheimer disease, Parkinson disease, epilepsy, and schizophrenia. Unfortunately, few techniques support the measurement of real-time changes in neurotransmitter levels over multiple days, as is essential for ethologic and pharmacodynamic testing. Microdialysis is commonly used for these research paradigms, but its poor temporal and spatial resolution make this technique inadequate for measuring the rapid dynamics (milliseconds to seconds) of fast signaling neurotransmitters, such as glutamate and acetylcholine. Enzymatic microelectrode arrays (biosensors) coupled with electrochemical recording techniques have demonstrated fast temporal resolution (less than 1 s), excellent spatial resolution (micron-scale), low detection limits (<= 200 nM), and minimal damage (50 to 100 mu m) to surrounding brain tissue. Here we discuss the benefits, methods, and animal welfare considerations of using platinum microelectrodes on a ceramic substrate for enzyme-based electrochemical recording techniques for real-time in vivo neurotransmitter recordings in both anesthetized and awake, freely moving rodents
机译:神经传递的改变与许多神经退行性疾病和神经精神疾病有关,包括阿尔茨海默氏病,帕金森氏病,癫痫和精神分裂症。不幸的是,很少有技术支持对数天之内的神经递质水平的实时变化进行测量,这对于行为学和药效学测试至关重要。微透析通常用于这些研究范例,但是其差的时间和空间分辨率使该技术不足以测量快速信号传导神经递质(如谷氨酸和乙酰胆碱)的快速动力学(毫秒至秒)。酶促微电极阵列(生物传感器)与电化学记录技术相结合已显示出快速的时间分辨率(小于1 s),出色的空间分辨率(微米级),低检测限(<= 200 nM)和最小的损伤(50至100亩) m)到周围的脑组织。在这里,我们讨论了在陶瓷基质上使用铂微电极进行基于酶的电化学记录技术,以在麻醉和清醒,自由活动的啮齿动物中进行实时体内神经递质记录的益处,方法和动物福利方面的考虑。

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