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Integrated microsystem for non-invasive electrophysiological measurements on Xenopus oocytes

机译:集成微系统,用于非洲爪蟾卵母细胞的非侵入性电生理测量

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摘要

We propose a new non-invasive integrated microsystem for electrophysiological measurements on Xenopus laevis oocytes. Xenopus oocyte is a well-known expression system for various kinds of ion channels, that are potential tools in drug screening. In the traditional "Two Electrode Voltage Clamp" (TEVC) method, delicate micromanipulation is required to impale an oocyte with two microelectrodes. In our system, a non-invasive electrical access to the cytoplasm is provided by permeabilizing the cell membrane with an ionophore (e.g. nystatin). Unlike the classical patch-clamp or "macropatch" techniques, this method does not require removal of the vitelline membrane. Cell handling is significantly simplified, resulting in more robust recordings with increased throughput. Moreover, because only part of the oocyte surface is exposed to reagents, the required volume of reagent solutions could be reduced by an order of magnitude compared to the TEVC method. The fabrication process for this disposable microchip, based on poly-dimethylsiloxane (PDMS) molding and glass/PDMS bonding, is cost-efficient and simple. We tested this new microdevice by recording currents in oocytes expressing the human Epithelial Sodium Channel (hENaC) for membrane potentials between -100 and +50 mV. We recorded benzamil-sensitive currents with a large signal-to-noise ratio and we also obtained a benzamil concentration-inhibition curve displaying an inhibition constant IC50 of about 50 nM, comparable to previously published values obtained with the TEVC technique. (c) 2007 Elsevier B.V. All rights reserved.
机译:我们提出了一个新的非侵入式集成微系统,用于非洲爪蟾卵母细胞的电生理测量。非洲爪蟾卵母细胞是用于各种离子通道的众所周知的表达系统,是药物筛选的潜在工具。在传统的“两电极电压钳”(TEVC)方法中,需要精细的显微操作来刺穿具有两个微电极的卵母细胞。在我们的系统中,通过用离子载体(例如制霉菌素)透化细胞膜来提供对细胞质的非侵入性电通路。与经典的膜片钳或“大块膜”技术不同,此方法不需要去除卵黄膜。显着简化了信元处理,从而使记录更加健壮,并提高了吞吐量。此外,由于仅一部分卵母细胞表面暴露于试剂,因此与TEVC方法相比,所需的试剂溶液体积可以减少一个数量级。这种基于聚二甲基硅氧烷(PDMS)成型和玻璃/ PDMS粘合的一次性微芯片的制造工艺经济高效且简单。我们通过记录表达人类上皮钠通道(hENaC)的卵母细胞中膜电位介于-100和+50 mV之间的电流来测试这种新的微型设备。我们记录了具有大信噪比的苯扎米尔敏感电流,并且我们还获得了苯扎米尔浓度-抑制曲线,显示出约50 nM的抑制常数IC50,与先前通过TEVC技术获得的值相当。 (c)2007 Elsevier B.V.保留所有权利。

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