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The Movement of a Nerve in a Magnetic Field: Application to MRI Lorentz Effect Imaging

机译:神经在磁场中的运动:在MRI洛伦兹效应成像中的应用

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摘要

Direct detection of neural activity with MRI would be a breakthrough innovation in brain imaging. A Lorentz force method has been proposed to image nerve activity using MRI; a force between the action currents and the static MRI magnetic field causes the nerve to move. In the presence of a magnetic field gradient, this will cause the spins to precess at a different frequency, affecting the MRI signal. Previous mathematical modeling suggests that this effect is too small to explain the experimental data, but that model was limited because the action currents were assumed to be independent of position along the nerve, and because the magnetic field was assumed to be perpendicular to the nerve. In this paper, we calculate the nerve displacement analytically without these two assumptions. Using realistic parameter values, the nerve motion is less than 5 nm, which induced a phase shift in the MRI signal of less than 0.02°. Therefore, our results suggest that Lorentz force imaging is beyond the capabilities of current technology.
机译:MRI直接检测神经活动将是脑成像的一项突破性创新。已经提出了一种洛伦兹力方法来使用MRI对神经活动进行成像。动作电流和静态MRI磁场之间的力使神经运动。在存在磁场梯度的情况下,这将导致自旋以不同的频率进动,从而影响MRI信号。先前的数学模型表明,这种影响太小,无法解释实验数据,但是该模型受到限制,因为假定作用电流与沿神经的位置无关,并且由于磁场与神经垂直,因此认为该作用电流与神经的位置无关。在本文中,我们在没有这两个假设的情况下通过分析计算了神经位移。使用实际的参数值,神经运动小于5 nm,这会导致MRI信号的相移小于0.02°。因此,我们的结果表明,洛伦兹力成像技术已超出了当前技术的能力。

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