视觉引导单细胞电穿孔监测和操纵哺乳动物海马神经元。

IF 13.1 1区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Kevin C Gonzalez, Asako Noguchi, George Zakka, Hyun Choong Yong, Satoshi Terada, Miklos Szoboszlay, Justin O'Hare, Adrian Negrean, Tristan Geiller, Franck Polleux, Attila Losonczy
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引用次数: 0

摘要

稀疏的单细胞标记方法能够实现亚细胞区室和细胞内细胞器的高分辨率、高信噪比记录,并允许对单个细胞和局部电路进行精确操作,同时最大限度地减少与全局网络操作相关的复杂变化。然而,到目前为止,只有有限数量的方法被开发出来,用独特的基因编码指标组合来标记单个细胞,靶向深部皮层结构或持续使用相同的慢性制剂数周。在这里,我们开发了一种方法,将质粒选择性地递送到小鼠海马背侧的单个锥体神经元,使用双光子视觉引导的体内单细胞电穿孔来解决这些限制。该方法允许在控制数量的单个锥体神经元中长期表达质粒,促进亚细胞分辨率成像,细胞内细胞器跟踪,单突触输入映射,可塑性诱导和靶向全细胞膜片钳记录。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Visually guided in vivo single-cell electroporation for monitoring and manipulating mammalian hippocampal neurons.

Sparse, single-cell labeling approaches enable high-resolution, high signal-to-noise recordings from subcellular compartments and intracellular organelles and allow precise manipulations of individual cells and local circuits while minimizing complex changes associated with global network manipulations. However, thus far, only a limited number of approaches have been developed to label single cells with unique combinations of genetically encoded indicators, target deep cortical structures or sustainably use the same chronic preparation for weeks. Here we developed a method to deliver plasmids selectively to single pyramidal neurons in the mouse dorsal hippocampus using two-photon visually guided in vivo single-cell electroporation to address these limitations. This method allows long-term plasmid expression in a controlled number of individual pyramidal neurons, facilitating subcellular resolution imaging, intracellular organelle tracking, monosynaptic input mapping, plasticity induction and targeted whole-cell patch-clamp recordings.

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来源期刊
Nature Protocols
Nature Protocols 生物-生化研究方法
CiteScore
29.10
自引率
0.70%
发文量
128
审稿时长
4 months
期刊介绍: Nature Protocols focuses on publishing protocols used to address significant biological and biomedical science research questions, including methods grounded in physics and chemistry with practical applications to biological problems. The journal caters to a primary audience of research scientists and, as such, exclusively publishes protocols with research applications. Protocols primarily aimed at influencing patient management and treatment decisions are not featured. The specific techniques covered encompass a wide range, including but not limited to: Biochemistry, Cell biology, Cell culture, Chemical modification, Computational biology, Developmental biology, Epigenomics, Genetic analysis, Genetic modification, Genomics, Imaging, Immunology, Isolation, purification, and separation, Lipidomics, Metabolomics, Microbiology, Model organisms, Nanotechnology, Neuroscience, Nucleic-acid-based molecular biology, Pharmacology, Plant biology, Protein analysis, Proteomics, Spectroscopy, Structural biology, Synthetic chemistry, Tissue culture, Toxicology, and Virology.
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