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集成三电极双模式检测芯片用于位置细胞分析:多巴胺促进位置细胞在编码新环境和奖励的空间位置中的作用。

Integrated Three-Electrode Dual-Mode Detection Chip for Place Cell Analysis: Dopamine Facilitates the Role of Place Cells in Encoding Spatial Locations of Novel Environments and Rewards.

机构信息

State Key Laboratory of Transducer Technology, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing 100190, China.

School of Electronic, Electrical and Communication Engineering, University of the Chinese Academy of Sciences, Beijing 100049, China.

出版信息

ACS Sens. 2023 Dec 22;8(12):4765-4773. doi: 10.1021/acssensors.3c01864. Epub 2023 Nov 28.

DOI:10.1021/acssensors.3c01864
PMID:38015643
Abstract

The functioning of place cells requires the involvement of multiple neurotransmitters, with dopamine playing a critical role in hippocampal place cell activity. However, the exact mechanisms through which dopamine influences place cell activity remain largely unknown. Herein, we present the development of the integrated three-electrode dual-mode detection chip (ITDDC), which enables simultaneous recording of the place cell activity and dopamine concentration fluctuation. The working electrode, reference electrode, and counter electrode are all integrated within the ITDDC in electrochemical detection, enabling the real-time in situ monitoring of dopamine concentrations in animals in motion. The reference, working, and counter electrodes are surface-modified using PtNPs and polypyrrole, PtNPs and PEDOT:PSS, and PtNPs, respectively. This modification allows for the detection of dopamine concentrations as low as 20 nM. We conducted dual-mode testing on mice in a novel environment and an environment with food rewards. We found distinct dopamine concentration variations along different paths within a novel environment, implying that different dopamine levels may contribute to spatial memory. Moreover, environmental food rewards elevate dopamine significantly, followed by the intense firing of reward place cells, suggesting a crucial role of dopamine in facilitating the encoding of reward-associated locations in animals. The real-time and in situ recording capabilities of ITDDC offer new opportunities to investigate the interplay between electrophysiology and dopamine during animal exploration and reward-based memory and provide a novel glimpse into the correlation between dopamine levels and place cell activity.

摘要

位置细胞的功能需要多种神经递质的参与,其中多巴胺在海马体位置细胞活动中起着关键作用。然而,多巴胺影响位置细胞活动的确切机制在很大程度上仍然未知。在此,我们介绍了集成三电极双模检测芯片(ITDDC)的开发,该芯片可实现位置细胞活动和多巴胺浓度波动的同时记录。在电化学检测中,工作电极、参考电极和对电极都集成在 ITDDC 内,可实时原位监测运动动物中的多巴胺浓度。参考电极、工作电极和对电极分别使用 PtNPs 和聚吡咯、PtNPs 和 PEDOT:PSS 以及 PtNPs 进行表面修饰。这种修饰可以检测到低至 20 nM 的多巴胺浓度。我们在新环境和有食物奖励的环境中对小鼠进行了双模测试。我们在新环境中沿着不同路径发现了明显的多巴胺浓度变化,这表明不同的多巴胺水平可能有助于空间记忆。此外,环境中的食物奖励显著提高了多巴胺水平,随后是奖励位置细胞的强烈放电,表明多巴胺在促进动物对奖励相关位置的编码中起着关键作用。ITDDC 的实时和原位记录能力为研究动物探索和基于奖励的记忆过程中电生理学和多巴胺之间的相互作用提供了新的机会,并为多巴胺水平与位置细胞活动之间的相关性提供了新的见解。

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