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电压驱动的神经元粘弹性改变。

Voltage-Driven Alterations to Neuron Viscoelasticity.

作者信息

Kayal Celine, Tamayo-Elizalde Miren, Adam Casey, Ye Hua, Jerusalem Antoine

机构信息

Department of Engineering Science, University of Oxford, Oxford, United Kingdom.

Department of Engineering Science, Institute of Biomedical Engineering, University of Oxford, Oxford, United Kingdom.

出版信息

Bioelectricity. 2022 Mar 15;4(1):31-38. doi: 10.1089/bioe.2021.0028. eCollection 2022 Mar.

Abstract

BACKGROUND

The consideration of neurons as coupled mechanical-electrophysiological systems is supported by a growing body of experimental evidence, including observations that cell membranes mechanically deform during the propagation of an action potential. However, the short-term (seconds to minutes) influence of membrane voltage on the mechanical properties of a neuron at the single-cell level remains unknown.

MATERIALS AND METHODS

Here, we use microscale dynamic mechanical analysis to demonstrate that changes in membrane potential induce changes in the mechanical properties of individual neurons. We simultaneously measured the membrane potential and mechanical properties of individual neurons through a multiphysics single-cell setup. Membrane voltage of a single neuron was measured through whole-cell patch clamp. The mechanical properties of the same neuron were measured through a nanoindenter, which applied a dynamic indentation to the neuron at different frequencies.

RESULTS

Neuronal storage and loss moduli were lower for positive voltages than negative voltages.

CONCLUSION

The observed effects of membrane voltage on neuron mechanics could be due to piezoelectric or flexoelectric effects and altered ion distributions under the applied voltage. Such effects could change cell mechanics by changing the intermolecular interactions between ions and the various biomolecules within the membrane and cytoskeleton.

摘要

背景

越来越多的实验证据支持将神经元视为耦合的机械 - 电生理系统,包括观察到细胞膜在动作电位传播过程中会发生机械变形。然而,在单细胞水平上,膜电压对神经元机械特性的短期(数秒至数分钟)影响仍然未知。

材料与方法

在此,我们使用微尺度动态力学分析来证明膜电位的变化会引起单个神经元机械特性的改变。我们通过多物理场单细胞装置同时测量单个神经元的膜电位和机械特性。通过全细胞膜片钳测量单个神经元的膜电压。通过纳米压痕仪测量同一神经元的机械特性,该仪器以不同频率对神经元施加动态压痕。

结果

正电压下神经元的储能模量和损耗模量低于负电压。

结论

观察到的膜电压对神经元力学的影响可能是由于压电或挠电效应以及施加电压下离子分布的改变。这些效应可能通过改变离子与膜和细胞骨架内各种生物分子之间的分子间相互作用来改变细胞力学。

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