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Frequency Spectrum of Transepithelial Potential Difference Reveals Transport-Related Oscillations

机译:跨上皮电位差的频谱揭示了运输相关的振荡

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摘要

How epithelia transport fluid is a fundamental issue that is unresolved. Explanations offered include molecular engines, local transcellular osmosis, local paracellular osmosis, and paracellular fluid transport. On the basis of experimental and theoretical work done on corneal endothelium, a fluid transporting epithelium, we suggest electroosmotic coupling at the level of the intercellular junctions driven by the transendothelial electrical potential difference as an explanation of paracellular fluid transport. We collect frequency spectra of that potential difference in real-time. For what we believe is the first time for any epithelium, we report that, unexpectedly, the potential difference displays oscillations at many characteristic frequencies. We also show that on both stimulating cell activity and inhibiting ion transport mechanisms, there are corresponding changes in the oscillations amplitudes that mirror changes known previously in rates of fluid transport. We believe these findings provide a novel tool to study the kinetics of electrogenic elements such as channels and transporters, which from this evidence would give rise to current oscillations with characteristic periods going from 150 ms to 8 s.
机译:上皮细胞如何输送液体是尚未解决的基本问题。提供的解释包括分子引擎,局部跨细胞渗透,局部细胞旁渗透和细胞旁液运输。根据对角膜内皮细胞(一种流体运输上皮)所做的实验和理论研究,我们建议在电渗偶联作用下由跨内皮电势差驱动的细胞间连接水平作为对细胞旁液运输的解释。我们实时收集该电位差的频谱。对于我们认为是首次出现的任何上皮细胞,我们意外地报道了电势差显示出许多特征频率上的振荡。我们还表明,在刺激细胞活性和抑制离子迁移机制上,振荡幅度都有相应的变化,反映出以前已知的流体传输速率的变化。我们相信这些发现为研究诸如通道和转运蛋白等电学元素的动力学提供了一种新颖的工具,从这一证据来看,它们将引起电流振荡,其特征周期从150 ms到8 s。

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