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Can ultrasound be used to stimulate nerve tissue?

机译:超声波可以用来刺激神经组织吗?

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Background The stimulation of nerve or cortical tissue by magnetic induction is a relatively new tool for the non-invasive study of the brain and nervous system. Transcranial magnetic stimulation (TMS), for example, has been used for the functional mapping of the motor cortex and may have potential for treating a variety of brain disorders. Methods and Results A new method of stimulating active tissue is proposed by propagating ultrasound in the presence of a magnetic field. Since tissue is conductive, particle motion created by an ultrasonic wave will induce an electric current density generated by Lorentz forces. An analytical derivation is given for the electric field distribution induced by a collimated ultrasonic beam. An example shows that peak electric fields of up to 8 V/m appear to be achievable at the upper range of diagnostic intensities. This field strength is about an order of magnitude lower than fields typically associated with TMS; however, the electric field gradients induced by ultrasound can be quite high (about 60 kV/m2 at 4 MHz), which theoretically play a more important role in activation than the field magnitude. The latter value is comparable to TMS-induced gradients. Conclusion The proposed method could be used to locally stimulate active tissue by inducing an electric field in regions where the ultrasound is focused. Potential advantages of this method compared to TMS is that stimulation of cortical tissue could be highly localized as well as achieved at greater depths in the brain than is currently possible with TMS.
机译:背景技术通过磁感应刺激神经或皮质组织是用于脑和神经系统的非侵入性研究的相对较新的工具。例如,经颅磁刺激(TMS)已用于运动皮层的功能定位,可能具有治疗多种脑部疾病的潜力。方法和结果提出了一种通过在磁场中传播超声来刺激活动组织的新方法。由于组织是导电的,所以由超声波产生的粒子运动将感应出由洛伦兹力产生的电流密度。给出了由准直超声束感应的电场分布的解析推导。一个例子表明,在较高的诊断强度范围内,似乎可以达到8 V / m的峰值电场。该场强比通常与TMS相关的场低一个数量级。但是,超声感应的电场梯度可能会很高(在4 MHz时约为60 kV / m 2 ),从理论上讲,它在激活中的作用比场强更重要。后者的值可与TMS引起的梯度相媲美。结论所提出的方法可通过在超声聚焦区域感应电场来局部刺激活动组织。与TMS相比,此方法的潜在优势在于,与目前使用TMS相比,对皮质组织的刺激可以高度局限化,并且可以在大脑的更深处实现。

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