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由抗体衍生物实现的多重体积相关光电子显微镜技术为小鼠小脑皮质的细胞学研究提供了新的见解。

Multiplexed volumetric CLEM enabled by antibody derivatives provides new insights into the cytology of the mouse cerebellar cortex.

作者信息

Han Xiaomeng, Lu Xiaotang, Li Peter H, Wang Shuohong, Schalek Richard, Meirovitch Yaron, Lin Zudi, Adhinarta Jason, Berger Daniel, Wu Yuelong, Fang Tao, Meral Elif Sevde, Asraf Shadnan, Ploegh Hidde, Pfister Hanspeter, Wei Donglai, Jain Viren, Trimmer James S, Lichtman Jeff W

机构信息

Department of Molecular and Cellular Biology, Harvard University, Cambridge, MA.

Google Research, Mountain View, CA.

出版信息

Res Sq. 2023 Jul 6:rs.3.rs-3121892. doi: 10.21203/rs.3.rs-3121892/v1.

Abstract

Mapping neuronal networks that underlie behavior has become a central focus in neuroscience. While serial section electron microscopy (ssEM) can reveal the fine structure of neuronal networks (connectomics), it does not provide the molecular information that helps identify cell types or their functional properties. Volumetric correlated light and electron microscopy (vCLEM) combines ssEM and volumetric fluorescence microscopy to incorporate molecular labeling into ssEM datasets. We developed an approach that uses small fluorescent single-chain variable fragment (scFv) immuno-probes to perform multiplexed detergent-free immuno-labeling and ssEM on the same samples. We generated eight such fluorescent scFvs that targeted useful markers for brain studies (green fluorescent protein, glial fibrillary acidic protein, calbindin, parvalbumin, voltage-gated potassium channel subfamily A member 2, vesicular glutamate transporter 1, postsynaptic density protein 95, and neuropeptide Y). To test the vCLEM approach, six different fluorescent probes were imaged in a sample of the cortex of a cerebellar lobule (Crus 1), using confocal microscopy with spectral unmixing, followed by ssEM imaging of the same sample. The results show excellent ultrastructure with superimposition of the multiple fluorescence channels. Using this approach we could document a poorly described cell type in the cerebellum, two types of mossy fiber terminals, and the subcellular localization of one type of ion channel. Because scFvs can be derived from existing monoclonal antibodies, hundreds of such probes can be generated to enable molecular overlays for connectomic studies.

摘要

绘制行为背后的神经网络已成为神经科学的核心焦点。虽然连续切片电子显微镜(ssEM)可以揭示神经网络的精细结构(连接组学),但它无法提供有助于识别细胞类型或其功能特性的分子信息。体积相关光电子显微镜(vCLEM)将ssEM和体积荧光显微镜结合起来,将分子标记纳入ssEM数据集中。我们开发了一种方法,使用小型荧光单链可变片段(scFv)免疫探针在同一样本上进行多重无去污剂免疫标记和ssEM。我们生成了八种这样的荧光scFv,它们靶向用于脑研究的有用标记物(绿色荧光蛋白、胶质纤维酸性蛋白、钙结合蛋白、小白蛋白、电压门控钾通道亚家族A成员2、囊泡谷氨酸转运体1、突触后密度蛋白95和神经肽Y)。为了测试vCLEM方法,在小脑小叶(Crus 1)皮质的一个样本中对六种不同的荧光探针进行成像,使用带有光谱解混的共聚焦显微镜,然后对同一样本进行ssEM成像。结果显示了多个荧光通道叠加的出色超微结构。使用这种方法,我们可以记录小脑中一种描述较少的细胞类型、两种苔藓纤维终末类型以及一种离子通道的亚细胞定位。由于scFv可以从现有的单克隆抗体中获得,因此可以生成数百种这样的探针,以实现用于连接组学研究的分子叠加。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/554a/10350204/d934255fcd39/nihpp-rs3121892v1-f0001.jpg

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