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微线圈设计影响皮质内磁刺激反应的空间范围。

Micro-Coil Design Influences the Spatial Extent of Responses to Intracortical Magnetic Stimulation.

出版信息

IEEE Trans Biomed Eng. 2019 Jun;66(6):1680-1694. doi: 10.1109/TBME.2018.2877713. Epub 2018 Oct 23.

Abstract

OBJECTIVE

Electrical stimulation via cortically implanted electrodes has been proposed to treat a wide range of neurological disorders. Effectiveness has been limited, however, in part due to the inability of conventional electrodes to activate specific types of neurons while avoiding other types. Recent demonstrations that magnetic stimulation from a micro-coil can selectively activate pyramidal neurons (PNs) while avoiding passing axons suggest the possibility that such an approach can overcome some this limitation and here we use computer simulations to explore how the micro-coil design influences the selectivity with which neurons are activated.

METHODS

A computational model was developed to compare the selectivity of magnetic stimulation induced by rectangular-, V-, and W-shaped coil designs. The more promising designs (V- and W-shapes) were fabricated for use in electrophysiological experiments including in vitro patch-clamp recording and calcium imaging (GCaMP6f) of mouse brain slices.

RESULTS

Both V- and W-shaped coils reliably activated layer 5 (L5) PNs but V-coils were more effective while W-coils were more selective. Activation thresholds with double-loop coils were approximately one-half those of single-loop coils. Calcium imaging revealed that both V- and W-coils better confine activation than electrodes.

CONCLUSION

Individual design features can influence both the strength as well as the selectivity of micro-coils and can be accurately predicted by computer simulations.

SIGNIFICANCE

Our results show that how coil design influences the response of cortical neurons to stimulation and are an important step toward the development of next-generation cortical prostheses.

摘要

目的

通过皮层植入电极进行电刺激已被提议用于治疗广泛的神经疾病。然而,其有效性受到限制,部分原因是传统电极无法激活特定类型的神经元,同时避免激活其他类型的神经元。最近的研究表明,来自微线圈的磁刺激可以选择性地激活锥体神经元(PNs),同时避免通过轴突,这表明这种方法有可能克服一些限制,在这里,我们使用计算机模拟来探索微线圈设计如何影响神经元被激活的选择性。

方法

开发了一个计算模型来比较矩形、V 形和 W 形线圈设计引起的磁刺激的选择性。对更有前途的设计(V 形和 W 形)进行了制造,用于电生理实验,包括体外膜片钳记录和小鼠脑片的钙成像(GCaMP6f)。

结果

V 形和 W 形线圈都能可靠地激活第 5 层(L5)PNs,但 V 形线圈更有效,而 W 形线圈更具选择性。双环线圈的激活阈值约为单环线圈的一半。钙成像显示,V 形和 W 形线圈都比电极更好地限制了激活。

结论

单个设计特征可以影响微线圈的强度和选择性,并且可以通过计算机模拟准确预测。

意义

我们的结果表明线圈设计如何影响皮质神经元对刺激的反应,这是开发下一代皮质假体的重要一步。

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本文引用的文献

1
Implantable microcoils for intracortical magnetic stimulation.可植入微线圈用于皮质内磁刺激。
Sci Adv. 2016 Dec 9;2(12):e1600889. doi: 10.1126/sciadv.1600889. eCollection 2016 Dec.
2
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IEEE Trans Neural Syst Rehabil Eng. 2017 Sep;25(9):1375-1386. doi: 10.1109/TNSRE.2016.2631446. Epub 2016 Nov 22.
3
Intracortical microstimulation of human somatosensory cortex.人类体感皮层的皮层内微刺激。
Sci Transl Med. 2016 Oct 19;8(361):361ra141. doi: 10.1126/scitranslmed.aaf8083. Epub 2016 Oct 13.
8
9
Suppression of subthalamic nucleus activity by micromagnetic stimulation.微磁刺激对丘脑底核活动的抑制作用。
IEEE Trans Neural Syst Rehabil Eng. 2015 Jan;23(1):116-27. doi: 10.1109/TNSRE.2014.2348415. Epub 2014 Aug 21.

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