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Characterization of Solute Distribution Following Iontophoresis from a Micropipet

机译:从微量移液管进行离子电渗疗法后溶质分布的表征

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Iontophoresis uses a current to eject solution from the tip of a barrel formed from a pulled glass capillary and has been employed as a method of drug delivery for neurochemical investigations. Much attention has been devoted to resolving perhaps the greatest limitation of iontophoresis, the inability to determine the concentration of substances delivered by ejections. To further address this issue, we evaluate the properties of typical ejections such as barrel solution velocity and its relation to the ejection current using an amperometric and liquid chromatographic approach. These properties were used to predict the concentration distribution of ejected solute that was then confirmed by fluorescence microscopy. Additionally, incorporation of oppositely charged fluorophores into the barrel investigated the role of migration on the mass transport of an ejected species. Results indicate that location relative to the barrel tip is the primary influence on the distribution of ejected species. At short distances (<100 μm), advection from electroosmotic transport of the barrel solution may significantly contribute to the distribution, but this effect can be minimized through the use of low to moderate ejection currents. However, as the distance from the source increases (>100 μm), even solute ejected using high currents exhibits diffusion-limited behavior. Lastly a time-dependent theoretical model was constructed and is used with experimental fluorescent profiles to demonstrate how iontophoresis can generate near-uniform concentration distributions near the ejection source.
机译:离子电渗疗法使用电流从由拉制的玻璃毛细管形成的针筒尖端喷射溶液,并已被用作神经化学研究的药物输送方法。人们已经集中精力解决离子电渗疗法的最大局限性,即无法确定通过喷射传递的物质的浓度。为了进一步解决这个问题,我们使用安培和液相色谱方法评估了典型喷射的特性,例如桶溶液速度及其与喷射电流的关系。这些特性用于预测喷射溶质的浓度分布,然后通过荧光显微镜确认。另外,将带相反电荷的荧光团并入到枪管中,研究了迁移对排出物质的质量迁移的作用。结果表明,相对于枪管尖端的位置是对喷射物质分布的主要影响。在短距离(<100μm)处,桶溶液的电渗传输产生的对流可能会极大地促进分布,但是可以通过使用低至中等的喷射电流来最小化这种影响。但是,随着距源的距离增加(> 100μm),即使使用高电流喷射的溶质也表现出扩散受限的行为。最后,建立了一个与时间相关的理论模型,并将其与实验荧光图一起用于证明离子电渗疗法如何在喷射源附近产生近乎均匀的浓度分布。

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