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单个神经元的高通量形态计量分析

High-throughput morphometric analysis of individual neurons.

作者信息

Wu Chi-Cheng, Reilly John F, Young Warren G, Morrison John H, Bloom Floyd E

机构信息

Neurome, Inc, 11149 North Torrey Pines Rd, La Jolla, CA 92037, USA.

出版信息

Cereb Cortex. 2004 May;14(5):543-54. doi: 10.1093/cercor/bhh016. Epub 2004 Mar 28.

Abstract

To facilitate high-throughput quantitative analysis of neuronal structure, this study optimized the diOlistic method of whole neuron labeling to examine multiple neurons in fixed brain, and optimized image acquisition parameters to preserve signal for subsequent photoconversion. Fluorescent dye-coated gold particles were successively delivered by helium-powered ejection to 250 microm thick brain slices with loading density and penetration depth optimized to maximize the yield of labeled neurons within the slice while avoiding overlapping labeled dendritic processes in the x-y plane and z-axis. Labeled neurons were imaged using confocal laser-scanning microscopy with pinhole aperture and scan speed enhanced to minimize capture time and fluorescence degradation. Optimized image acquisition parameters preserved fluorescence signal and facilitated subsequent oxygen-enriched photoconversion for higher magnification dendritic spine analysis. Sampling criteria limited analysis to neurons whose z-axis dendritic processes were fully contained within the tissue slice and in which dye transport extended to the most distal portions of the dendrites. The yield of completely labeled neurons was, on average, more than 20 cells per brain region per animal. With optimized spatio-temporal diOlistic loading parameters, along with image acquisition parameters optimized for subsequent photoconversion, the present protocol provides a high-throughput strategy for full-scale quantitative analysis of three-dimensional neuronal morphology.

摘要

为便于对神经元结构进行高通量定量分析,本研究优化了全神经元标记的基因枪轰击法,以检测固定脑内的多个神经元,并优化了图像采集参数,以保留信号用于后续光转换。通过氦动力喷射将荧光染料包被的金颗粒依次递送至250微米厚的脑切片,优化加载密度和穿透深度,以在切片内最大化标记神经元的产量,同时避免在x-y平面和z轴上标记的树突过程重叠。使用共聚焦激光扫描显微镜对标记的神经元进行成像,增强针孔孔径和扫描速度,以最小化捕获时间和荧光降解。优化的图像采集参数保留了荧光信号,并便于后续进行富氧光转换以进行更高倍率的树突棘分析。采样标准将分析限制在z轴树突过程完全包含在组织切片内且染料运输延伸到树突最远端的神经元。平均而言,每只动物每个脑区完全标记的神经元产量超过20个细胞。通过优化的时空基因枪轰击加载参数,以及为后续光转换而优化的图像采集参数,本方案为三维神经元形态的全面定量分析提供了一种高通量策略。

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