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基于电压测序的全光学电压成像引导的突触后单细胞转录组分析。

All-optical voltage imaging-guided postsynaptic single-cell transcriptome profiling with Voltage-Seq.

机构信息

Department of Neuroscience, Karolinska Institutet, Stockholm, Sweden.

Department of Medical Biochemistry and Biophysics, Karolinska Institutet, Stockholm, Sweden.

出版信息

Nat Protoc. 2024 Oct;19(10):2863-2890. doi: 10.1038/s41596-024-01005-y. Epub 2024 Jun 4.

Abstract

Neuronal pathways recruit large postsynaptic populations and maintain connections via distinct postsynaptic response types (PRTs). Until recently, PRTs were accessible as a selection criterion for single-cell RNA sequencing only through probing by low-throughput whole-cell electrophysiology. To overcome these limitations and target neurons on the basis of specific PRTs for soma collection and subsequent single-cell RNA sequencing, we developed Voltage-Seq using the genetically encoded voltage indicator Voltron in acute brain slices from mice. We also created an onsite analysis tool, VoltView, to guide soma collection of specific PRTs using a classifier based on a previously acquired database of connectomes from multiple animals. Here we present our procedure for preparing the optical path, the imaging setup and detailing the imaging and analysis steps, as well as a complete procedure for sequencing library preparation. This enables researchers to conduct our high-throughput all-optical synaptic assay and to obtain single-cell transcriptomic data from selected postsynaptic neurons. This also allows researchers to resolve the connectivity ratio of a specific pathway and explore the diversity of PRTs within that connectome. Furthermore, combining high throughput with quick analysis gives unique access to find specific connections within a large postsynaptic connectome. Voltage-Seq also allows the investigation of correlations between connectivity and gene expression changes in a postsynaptic cell-type-specific manner for both excitatory and inhibitory connections. The Voltage-Seq workflow can be completed in ~6 weeks, including 4-5 weeks for viral expression of the Voltron sensor. The technique requires knowledge of basic laboratory techniques, micromanipulator handling skills and experience in molecular biology and bioinformatics.

摘要

神经元通路招募大量的突触后群体,并通过不同的突触后反应类型 (PRTs) 维持连接。直到最近,PRTs 只能通过高通量全细胞电生理学探测作为单细胞 RNA 测序的选择标准来获得。为了克服这些限制,并根据特定的 PRT 靶向神经元进行胞体收集和随后的单细胞 RNA 测序,我们在来自小鼠的急性脑片中使用遗传编码的电压指示剂 Voltron 开发了 Voltage-Seq。我们还创建了一个现场分析工具 VoltView,使用基于先前从多个动物获得的连接组数据库的分类器来指导特定 PRT 的胞体收集。在这里,我们介绍了准备光路、成像设置的过程,并详细说明了成像和分析步骤,以及测序文库制备的完整过程。这使研究人员能够进行我们的高通量全光学突触测定,并从选定的突触后神经元中获得单细胞转录组数据。这也使研究人员能够确定特定通路的连接比例,并探索该连接组内 PRTs 的多样性。此外,高通量与快速分析相结合,使我们能够在一个大的突触后连接组中找到特定的连接。Volt-Seq 还允许以突触后细胞类型特异性的方式研究连接和基因表达变化之间的相关性,无论是兴奋性连接还是抑制性连接。Volt-Seq 工作流程可以在大约 6 周内完成,包括 4-5 周用于 Voltron 传感器的病毒表达。该技术需要具备基本实验室技术、微操作技能以及分子生物学和生物信息学方面的经验。

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