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用于监测肾小管体外模型中跨上皮 NaCl 转运的灌流室。

A perfusion chamber for monitoring transepithelial NaCl transport in an in vitro model of the renal tubule.

机构信息

Institut de Microelectrònica de Barcelona, IMB-CNM (CSIC)., 08193,, Bellaterra, Barcelona, Spain.

CIBER-BBN, Networking Center on Bioengineering, Biomaterials and Nanomedicine, Barcelona, Spain.

出版信息

Biotechnol Bioeng. 2018 Jun;115(6):1604-1613. doi: 10.1002/bit.26574. Epub 2018 Mar 8.

Abstract

Transepithelial electrical measurements in the renal tubule have provided a better understanding of how kidney regulates electrolyte and water homeostasis through the reabsorption of molecules and ions (e.g., H O and NaCl). While experiments and measurement techniques using native tissue are difficult to prepare and to reproduce, cell cultures conducted largely with the Ussing chamber lack the effect of fluid shear stress which is a key physiological stimulus in the renal tubule. To overcome these limitations, we present a modular perfusion chamber for long-term culture of renal epithelial cells under flow that allows the continuous and simultaneous monitoring of both transepithelial electrical parameters and transepithelial NaCl transport. The latter is obtained from electrical conductivity measurements since Na and Cl are the ions that contribute most to the electrical conductivity of a standard physiological solution. The system was validated with epithelial monolayers of raTAL and NRK-52E cells that were characterized electrophysiologically for 5 days under different flow conditions (i.e., apical perfusion, basal, or both). In addition, apical to basal chemical gradients of NaCl (140/70 and 70/140 mM) were imposed in order to demonstrate the feasibility of this methodology for quantifying and monitoring in real time the transepithelial reabsorption of NaCl, which is a primary function of the renal tubule.

摘要

跨上皮电测量技术使人们更好地了解肾脏如何通过对分子和离子(如 H2O 和 NaCl)的重吸收来调节电解质和水的稳态。虽然使用天然组织进行的实验和测量技术很难准备和重现,但很大程度上使用 Ussing 室进行的细胞培养缺乏流体切应力的影响,而流体切应力是肾脏小管中的一个关键生理刺激因素。为了克服这些限制,我们提出了一种用于在流动条件下进行长期肾上皮细胞培养的模块化灌注室,该灌注室允许同时连续监测跨上皮电参数和跨上皮 NaCl 转运。后者可通过电导率测量获得,因为 Na 和 Cl 是对标准生理溶液电导率贡献最大的离子。该系统通过 raTAL 和 NRK-52E 细胞的上皮单层进行了验证,这些细胞在不同的流动条件下(即顶端灌注、基底或两者)进行了 5 天的电生理特征分析。此外,还施加了 NaCl 的顶端到基底的化学浓度梯度(140/70 和 70/140 mM),以证明该方法用于实时定量和监测 NaCl 的跨上皮重吸收的可行性,这是肾脏小管的主要功能。

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