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直流刺激内皮单层可通过电渗效应诱导运输的短暂和可逆增加。

Direct current stimulation of endothelial monolayers induces a transient and reversible increase in transport due to the electroosmotic effect.

机构信息

Department of Biomedical Engineering, The City College of New York, New York, USA.

出版信息

Sci Rep. 2018 Jun 18;8(1):9265. doi: 10.1038/s41598-018-27524-9.

Abstract

We investigated the effects of direct current stimulation (DCS) on fluid and solute transport across endothelial cell (EC) monolayers in vitro. Our motivation was transcranial direct current stimulation (tDCS) that has been investigated for treatment of neuropsychiatric disorders, to enhance neurorehabilitation, and to change cognition in healthy subjects. The mechanisms underlying this diversity of applications remain under investigation. To address the possible role of blood-brain barrier (BBB) changes during tDCS, we applied direct current to cultured EC monolayers in a specially designed chamber that generated spatially uniform direct current. DCS induced fluid and solute movement across EC layers that persisted only for the duration of the stimulation suggesting an electroosmosis mechanism. The direction of induced transport reversed with DCS polarity - a hallmark of the electroosmotic effect. The magnitude of DCS-induced flow was linearly correlated to the magnitude of the applied current. A mathematical model based on a two-pore description of the endothelial transport barrier and a Helmholtz model of the electrical double layer describes the experimental data accurately and predicts enhanced significance of this mechanism in less permeable monolayers. This study demonstrates that DCS transiently alters the transport function of the BBB suggesting a new adjunct mechanism of tDCS.

摘要

我们研究了直流电刺激(DCS)对体外内皮细胞(EC)单层中流体和溶质转运的影响。我们的动机是经颅直流电刺激(tDCS),它已被用于治疗神经精神疾病、增强神经康复和改变健康受试者的认知。这种多样性应用的潜在机制仍在研究中。为了解决 tDCS 期间血脑屏障(BBB)变化的可能作用,我们在专门设计的腔室内应用直流电,该腔室产生空间均匀的直流电。DCS 诱导 EC 层之间的流体和溶质运动,仅在刺激持续期间持续存在,表明存在电渗流机制。诱导的运输方向随 DCS 极性反转 - 这是电渗流效应的标志。DCS 诱导的流动幅度与施加电流的幅度呈线性相关。基于内皮转运屏障的两孔描述和双电层的亥姆霍兹模型的数学模型准确地描述了实验数据,并预测了该机制在渗透性较小的单层中具有更大的重要性。这项研究表明,DCS 会短暂改变 BBB 的转运功能,提示 tDCS 的一种新的辅助机制。

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