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用正电子发射断层扫描技术绘制红外神经刺激对全脑的影响。

Mapping whole brain effects of infrared neural stimulation with positron emission tomography.

作者信息

Meneghetti Marcello, Gudmundsen Frederik, Jessen Naja S, Sui Kunyang, Baun Christina, Palner Mikael, Markos Christos

机构信息

Department of Electrical and Photonics Engineering, Technical University of Denmark, Lyngby, Denmark.

Department of Neuroscience, University of Copenhagen, Copenhagen, Denmark.

出版信息

Imaging Neurosci (Camb). 2023 Dec 21;1. doi: 10.1162/imag_a_00052. eCollection 2023.

Abstract

The combination of neuroimaging and targeted neuromodulation is a crucial tool to gain a deeper understanding of neural networks at a circuit level. Infrared neurostimulation (INS) is a promising optical modality that allows to evoke neuronal activity with high spatial resolution without need for the introduction of exogenous substances in the brain. Here, we report the use of whole-brain functional [F]fluorodeoxyglucose positron emission tomography (FDG-PET) imaging during INS in the dorsal striatum, performed using a multifunctional soft neural probe. We demonstrate the possibility to identify multi-circuit connection patterns in both cortical and subcortical brain regions within a single scan. By using a bolus plus infusion FDG-PET scanning protocol, we were able to observe the metabolic rate evolution in these regions during the experiments and correlate its variation with the onset of the INS stimulus. Due to the focality of INS and the large amount of viable molecular targets for positron emission tomography (PET), this novel approach to simultaneous imaging and stimulation is highly versatile. This pilot study can pave the way to further understand the brain connectivity on a global scale.

摘要

神经成像与靶向神经调节相结合是在回路水平上更深入了解神经网络的关键工具。红外神经刺激(INS)是一种很有前景的光学方式,它能够以高空间分辨率激发神经元活动,而无需向大脑中引入外源物质。在此,我们报告了在背侧纹状体进行INS期间使用多功能软性神经探针进行全脑功能[F]氟脱氧葡萄糖正电子发射断层扫描(FDG-PET)成像的情况。我们展示了在单次扫描中识别皮质和皮质下脑区多回路连接模式的可能性。通过使用团注加输注FDG-PET扫描方案,我们能够在实验期间观察这些区域的代谢率变化,并将其变化与INS刺激的开始相关联。由于INS的聚焦性以及正电子发射断层扫描(PET)有大量可行的分子靶点,这种同时成像和刺激的新方法具有高度的通用性。这项初步研究可为在全球范围内进一步理解大脑连通性铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0cc7/12327079/ead7283b857b/imag_a_00052_fig2.jpg

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