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用于活体脑传感的高灵敏度、柔性双 L-谷氨酸和 GABA 微传感器的研制。

Development of highly sensitive, flexible dual L-glutamate and GABA microsensors for in vivo brain sensing.

机构信息

Department of Biomedical Engineering, University of California Irvine, CA, 92697, USA.

Department of Electrical Engineering and Computer Sciences, University of California Irvine, 92697, CA, USA.

出版信息

Biosens Bioelectron. 2023 Feb 15;222:114941. doi: 10.1016/j.bios.2022.114941. Epub 2022 Nov 24.

DOI:10.1016/j.bios.2022.114941
PMID:36455372
Abstract

Real-time tracking of neurotransmitter levels in vivo has been technically challenging due to the low spatiotemporal resolution of current methods. Since the imbalance of cortical excitation/inhibition (E:I) ratios are associated with a variety of neurological disorders, accurate monitoring of excitatory and inhibitory neurotransmitter levels is crucial for investigating the underlying neural mechanisms of these conditions. Specifically, levels of the excitatory neurotransmitter L-glutamate, and the inhibitory neurotransmitter GABA, are assumed to play critical roles in the E:I balance. Therefore, in this work, a flexible electrochemical microsensor is developed for real-time simultaneous detection of L-glutamate and GABA. The flexible polyimide substrate was used for easier handling during implantation and measurement, along with less brain damage. Further, by electrochemically depositing Pt-black nanostructures on the sensor's surface, the active surface area was enhanced for higher sensitivity. This dual neurotransmitter sensor probe was validated under various settings for its performance, including in vitro, ex vivo tests with glutamatergic neuronal cells and in vivo test with anesthetized rats. Additionally, the sensor's performance has been further investigated in terms of longevity and biocompatibility. Overall, our dual L-glutamate:GABA sensor microprobe has its unique features to enable accurate, real-time, and long-term monitoring of the E:I balance in vivo. Thus, this new tool should aid investigations of neural mechanisms of normal brain function and various neurological disorders.

摘要

由于当前方法的时空分辨率较低,体内神经递质水平的实时跟踪在技术上具有挑战性。由于皮质兴奋/抑制(E:I)比值的失衡与多种神经疾病有关,因此准确监测兴奋性和抑制性神经递质水平对于研究这些疾病的潜在神经机制至关重要。具体来说,兴奋性神经递质 L-谷氨酸和抑制性神经递质 GABA 的水平被认为在 E:I 平衡中起着关键作用。因此,在这项工作中,开发了一种灵活的电化学微传感器,用于实时同时检测 L-谷氨酸和 GABA。使用柔性聚酰亚胺基底,以便在植入和测量过程中更易于处理,同时减少脑损伤。此外,通过在传感器表面电化学沉积 Pt 黑纳米结构,提高了活性表面积,从而提高了灵敏度。该双神经递质传感器探头在各种设置下进行了性能验证,包括体外、离体谷氨酸能神经元细胞测试和麻醉大鼠体内测试。此外,还从寿命和生物相容性方面进一步研究了传感器的性能。总的来说,我们的双 L-谷氨酸:GABA 传感器微探针具有独特的特点,可以实现体内 E:I 平衡的准确、实时和长期监测。因此,这种新工具应该有助于研究正常大脑功能和各种神经疾病的神经机制。

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