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首页> 外文期刊>Molecular imaging and biology: MIB : the official publication of the Academy of Molecular Imaging >Multimodal Functional Neuroimaging by Simultaneous BOLD fMRI and Fiber-Optic Calcium Recordings and Optogenetic Control
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Multimodal Functional Neuroimaging by Simultaneous BOLD fMRI and Fiber-Optic Calcium Recordings and Optogenetic Control

机译:通过同时大胆的FMRI和光纤钙录制和光学控制多模态功能神经化

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摘要

Recent developments of optogenetic tools and fluorescence-based calcium recording techniques enable the manipulation and monitoring of neural circuits on a cellular level. Non-invasive imaging of brain networks, however, requires the application of methods such as blood oxygen level-dependent (BOLD) functional magnetic resonance imaging (fMRI), which is commonly used for functional neuroimaging. While BOLD fMRI provides brain-wide non-invasive reading of the hemodynamic response, it is only an indirect measure of neural activity. Direct observation of neural responses requires electrophysiological or optical methods. The latter can be combined with optogenetic control of neuronal circuits and are MRI compatible. Yet, simultaneous optical recordings are still limited to fiber-optic-based approaches. Here, we review the integration of optical recordings and optogenetic manipulation into fMRI experiments. As a practical example, we describe how BOLD fMRI in a 9.4-T small animal MR scanner can be combined with in vivo fiber-optic calcium recordings and optogenetic control in a multimodal setup. We present simultaneous BOLD fMRI and calcium recordings under optogenetic control in rat. We outline details about MR coil configuration, choice, and usage of opsins and chemically and genetically encoded calcium sensors, fiber implantation, appropriate light power for stimulation, and calcium signal detection, to provide a glimpse into challenges and opportunities of this multimodal molecular neuroimaging approach.
机译:最近的致光学工具和基于荧光的钙的记录技术的发展能够在蜂窝水平上操纵和监测神经电路。然而,脑网络的非侵入性成像需要施加诸如血氧水平依赖性(粗体)功能磁共振成像(FMRI)的方法,其通常用于功能性神经模仿。虽然大胆的FMRI提供了血液动力学反应的脑宽的非侵入性读数,但它只是神经活动的间接测量。直接观察神经反应需要电生理或光学方法。后者可以与神经元电路的光学控制结合,并且是MRI兼容的。然而,同时光学记录仍然限于基于光纤的方法。在这里,我们审查了光学记录和致敏操纵的集成到FMRI实验中。作为一个实际的例子,我们描述了9.4-T小动物MR扫描仪中的大胆FMRI如何与多模式设置中的Vivo光纤钙录制和致光学控制相结合。我们在大鼠致敏对照下同时大胆的FMRI和钙记录。我们概述了关于MR线圈配置,选择和使用OPSINS和化学和基因编码的钙传感器,纤维植入,刺激的适当光功率和钙信号检测的详细信息,并提供了这一多峰分子神经影像方法的挑战和机遇的一瞥。

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