首页> 外文期刊>Japanese Journal of Pharmacology >A Modified Coaxial Compound Micropipette for Extracellular Iontophoresis and Intracellular Recording: Fabrication, Performance and Theory
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A Modified Coaxial Compound Micropipette for Extracellular Iontophoresis and Intracellular Recording: Fabrication, Performance and Theory

机译:修饰的同轴复合微量移液器用于细胞外电渗疗法和细胞内记录:制备,性能和理论。

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References(19) Cited-By(3) Investigation of the identity and modes of action of neurotransmitters in the mammalian central nervous system can be facilitated by simultaneous intracellular recording of membrane potential and extracellular iontophoresis of agonists and antagonists. We describe here techniques for conveniently constructing a compound microelectrode, originally described by Sonnhof (Pflugers Arch 341, 351-358, 1973), suitable for such studies. The Sonnhof electrode consists of two components, a centraxial micropipette for recording membrane potential surrounded by a cylindrical array of 6 pipettes for iontophoresis. The cylindrical array tapers coaxially and terminates in 6 contiguous, crescent-shaped orifices surrounding the terminal portion of the central pipette, 25-50 μm from the tip. Pipettes were constructed from borosilicate glass tubing of 1-mm wall thickness having a 10-mm or 16-mm outer diameter. The resistances, flux and transport numbers for iontophoresis of glycine were measured for pipettes constructed from both sizes of glass. Flux increased with increasing levels of current, and transport number decreased with increasing micropipette resistance. A spherical diffusion model points out the steep dependence of steady state concentration on diffusional distance, stressing the importance of diminishing the distance between the iontophoresis source and the recording site. This is particularly true when brief pulses of current are used.
机译:参考文献(19)(3)通过同时在膜内记录激动剂和拮抗剂的膜电位以及胞外离子电渗疗法,可以促进对哺乳动物中枢神经系统中神经递质的识别和作用方式的研究。我们在这里描述了方便地构建复合微电极的技术,最初由Sonnhof(Pflugers Arch 341,351-358,1973)描述,适用于此类研究。 Sonnhof电极由两个组件组成,一个用于记录膜电位的中心微移液管,周围被6个移液管的圆柱阵列包围,以进行离子电渗疗法。圆柱形阵列同轴逐渐变细,并终止于6个连续的新月形孔口,这些孔口围绕着中心移液器的末端,距离尖端25至50μm。移液器由壁厚为1毫米,外径为10毫米或16毫米的硼硅酸盐玻璃管制成。测量了由两种尺寸的玻璃制成的移液器的甘氨酸离子电渗的电阻,通量和转运数。通量随电流水平的增加而增加,而转运数随微量移液器电阻的增加而减少。球形扩散模型指出了稳态浓度对扩散距离的强烈依赖性,强调了减小电离子透入源与记录位点之间距离的重要性。当使用短时电流脉冲时尤其如此。

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