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[使用梯度折射率透镜进行深部脑成像]

[Deep brain imaging by using GRIN lens].

作者信息

Hirano Kyosuke, Nomura Hiroshi

机构信息

Department of Neuropharmacology, Graduate School of Medicine, Hokkaido University.

Endowed Department of Cognitive Function and Pathology, Institute of Brain Science, Nagoya City University Graduate School of Medical Sciences.

出版信息

Nihon Yakurigaku Zasshi. 2025;160(1):53-57. doi: 10.1254/fpj.24071.

Abstract

Elucidating the neural mechanisms governing changes in individual animal behavior is a key goal in neuroscience. Such research has important implications for behavioral pharmacology and could lead to the development of treatments for psychiatric and neurological disorders. Given that the brain likely represents vast amounts of information through the combined activity of multiple neurons, studying these mechanisms requires the simultaneous recording of many neurons. Recent years have seen significant advancements in techniques for multi-cellular activity recording. Calcium imaging utilizing fluorescent sensors has emerged as a powerful method, enabling the concurrent acquisition of spatial arrangements and temporal activity changes in neuronal populations. This article focuses on deep brain imaging using GRIN lenses, particularly deep brain calcium imaging in freely behaving animals with miniaturized head-mounted microscopes. We compare the strengths and limitations of this approach to other calcium imaging methods, electrophysiological techniques, and fiber photometry. Finally, we discuss future developments in this field, including two-photon microscopy for imaging beyond cell bodies, membrane potential imaging using voltage sensors, and single-cell resolution manipulation of neural activity by integrating spatial light modulators and electrically tunable lenses.

摘要

阐明控制个体动物行为变化的神经机制是神经科学的一个关键目标。此类研究对行为药理学具有重要意义,并可能推动精神疾病和神经疾病治疗方法的开发。鉴于大脑可能通过多个神经元的联合活动来表征大量信息,研究这些机制需要同时记录多个神经元。近年来,多细胞活动记录技术取得了重大进展。利用荧光传感器的钙成像已成为一种强大的方法,能够同时获取神经元群体的空间排列和时间活动变化。本文重点介绍使用梯度折射率(GRIN)透镜的深部脑成像,特别是使用小型头戴式显微镜对自由活动动物进行深部脑钙成像。我们将这种方法与其他钙成像方法、电生理技术和光纤光度法的优缺点进行了比较。最后,我们讨论了该领域的未来发展,包括用于细胞体以外成像的双光子显微镜、使用电压传感器的膜电位成像,以及通过集成空间光调制器和电可调透镜对神经活动进行单细胞分辨率的操纵。

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