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脑电刺激下猪脑的凹陷反应。

Indentation response in porcine brain under electric fields.

机构信息

School of Mechanical and Aerospace Engineering, Jilin University, Changchun 130025, China.

Department of Cardiology, The First Hospital of Jilin University, Changchun 130021, China.

出版信息

Soft Matter. 2019 Jan 28;15(4):623-632. doi: 10.1039/c8sm01272e. Epub 2019 Jan 4.

Abstract

Electric fields in the environment can have profound effects on brain function and behavior. In clinical practice, some noninvasive/microinvasive therapies with electrical fields such as transcranial electrical stimulation (tES), deep brain stimulation (DBS), and electroconvulsive therapy (ECT) have emerged as powerful tools for the treatment of neuropsychiatric disorders and neuromodulation. Nonetheless, currently, most studies focus on the mechanisms and effects of therapies and do not to address the mechanical properties of brain tissue under electric fields. Thus, the mechanical behavior of brain tissue, which plays an important role in modulating both brain form and brain function, should be given attention. The present study addresses this paucity by presenting, for the first time, the mechanical properties of brain tissue under various intensities of direct current electric field (0, 2, 5, 10, 20, and 50 V) using a custom-designed indentation device. Prior to brain indentation, validation tests were performed in different hydrogels to ensure that there was no interference in the electric fields from the indentation device. Subsequently, the load trace data obtained from the indentation-relaxation tests was fitted to both linear elastic and viscoelastic models to characterize the sensitivity of the mechanical behavior of the brain tissue to the electric fields. The brain tissue was found to be softened at a higher electric field level and less viscous, and substantially responded more quickly with an increase in electric field. The explanations for the above behaviors were further discussed based on the analysis of the resistance and thermal responses during the testing process. Understanding the effect of electric fields on brain tissue at the mechanical level can provide a better understanding of the mechanisms of some therapies, which may be beneficial to guide therapy protocols.

摘要

环境中的电场会对大脑功能和行为产生深远影响。在临床实践中,一些具有电场的非侵入性/微创治疗方法,如经颅电刺激(tES)、深部脑刺激(DBS)和电惊厥疗法(ECT),已经成为治疗神经精神疾病和神经调节的有力工具。然而,目前大多数研究都集中在治疗方法的机制和效果上,而没有解决电场下脑组织的力学性能问题。因此,脑组织的力学行为应该得到重视,因为它在调节大脑形态和功能方面起着重要作用。本研究通过首次使用定制的压痕装置,展示了不同强度直流电场(0、2、5、10、20 和 50 V)下脑组织的力学性能,填补了这一空白。在进行脑压痕实验之前,在不同的水凝胶中进行了验证测试,以确保压痕装置不会对电场产生干扰。随后,对压痕-松弛测试获得的负载迹线数据进行了线性弹性和粘弹性模型拟合,以表征脑组织力学行为对电场的敏感性。研究发现,脑组织在较高的电场水平下变得更加柔软和低粘性,并且随着电场的增加,脑组织的响应速度明显加快。基于对测试过程中电阻和热响应的分析,进一步讨论了上述行为的解释。了解电场对脑组织在力学水平上的影响,可以更好地理解一些治疗方法的机制,这可能有助于指导治疗方案。

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