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用于改善大鼠和小鼠脊髓白质制剂复合动作电位记录的模块化双蔗糖间隙装置。

Modular double sucrose gap apparatus for improved recording of compound action potentials from rat and mouse spinal cord white matter preparations.

机构信息

Division of Neurosurgery, Toronto Western Hospital, University Health Network, Canada.

出版信息

J Neurosci Methods. 2010 Mar 15;187(1):33-40. doi: 10.1016/j.jneumeth.2009.12.006. Epub 2009 Dec 23.

DOI:10.1016/j.jneumeth.2009.12.006
PMID:20034518
Abstract

Compound action potential (CAP) recording is a powerful tool for studying the conduction properties and pharmacology of axons in multi-axonal preparations. The sucrose gap technique improves CAP recording by replacing the extracellular solution between the recording electrodes with a non-conductive sucrose solution to minimize extracellular shunting. The double sucrose gap (DSG), conferring similar advantages at the stimulation site, has been extensively used on guinea pig spinal cord white matter (WM) in vitro. Establishing the DSG methodology for WM preparations from smaller animals such as rats and mice is appealing due to their extensive use in basic and translationally oriented research. Here we describe a versatile modular DSG apparatus with rubber membrane separation of the compartments, suitable for WM strips from rat and mouse spinal cord. The small volumes of compartments (<0.1 ml) and the air-tight design allow perfusion rates of 0.5-1 ml/min with faster refreshment rates compared to commonly used 2-3 ml/min and larger compartments, providing economical usage of expensive pharmacological drugs. Our improved DSG design is particularly efficient for uncovering slower conducting, higher threshold CAP components, as demonstrated by recordings of C-wave (non-myelinated axons) in rat dorsal WM. In myelin-deficient Shiverer mice with genetically dysmyelinated axons, our DSG apparatus recordings revealed a multi-peak C-wave without preceding faster components. The improved stimulation and recording with our DSG apparatus, lowering the range of required stimulus intensities and reducing the artifact interference with recorded CAPs provide for critical technical advantages that allow for more detailed analysis of CAPs in relatively short preparations.

摘要

复合动作电位 (CAP) 记录是研究多轴突制备中轴突传导特性和药理学的有力工具。蔗糖间隙技术通过用非导电蔗糖溶液代替记录电极之间的细胞外溶液来提高 CAP 记录,以最大程度地减少细胞外分流。双蔗糖间隙 (DSG) 在刺激部位具有相似的优势,已广泛应用于豚鼠脊髓白质 (WM) 的体外研究。由于在基础研究和转化研究中广泛使用大鼠和小鼠等较小动物的 WM 制剂,因此建立 DSG 方法学非常有吸引力。在这里,我们描述了一种具有橡胶膜分隔腔室的多功能模块化 DSG 设备,适用于大鼠和小鼠脊髓 WM 条带。腔室的小体积 (<0.1 ml) 和密封设计允许以 0.5-1 ml/min 的灌流速率进行灌流,与常用的 2-3 ml/min 和更大的腔室相比, refreshment 速率更快,从而更经济地使用昂贵的药理学药物。我们改进的 DSG 设计对于揭示较慢传导、较高阈值 CAP 成分特别有效,如大鼠背侧 WM 中的 C 波 (无髓鞘轴突) 记录所示。在遗传性脱髓鞘 Shiverer 小鼠中,我们的 DSG 设备记录显示 C 波具有多峰,没有先前更快的成分。我们的 DSG 设备在刺激和记录方面的改进,降低了所需刺激强度的范围,并减少了与记录的 CAP 相关的伪影干扰,为 CAP 更详细的分析提供了关键的技术优势,这使得相对较短的制剂也可以进行分析。

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