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Solving the Orientation Specific Constraints in Transcranial Magnetic Stimulation by Rotating Fields

机译:通过旋转磁场解决经颅磁刺激中的定向特定约束

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摘要

Transcranial Magnetic Stimulation (TMS) is a promising technology for both neurology and psychiatry. Positive treatment outcome has been reported, for instance in double blind, multi-center studies on depression. Nonetheless, the application of TMS towards studying and treating brain disorders is still limited by inter-subject variability and lack of model systems accessible to TMS. The latter are required to obtain a deeper understanding of the biophysical foundations of TMS so that the stimulus protocol can be optimized for maximal brain response, while inter-subject variability hinders precise and reliable delivery of stimuli across subjects. Recent studies showed that both of these limitations are in part due to the angular sensitivity of TMS. Thus, a technique that would eradicate the need for precise angular orientation of the coil would improve both the inter-subject reliability of TMS and its effectiveness in model systems. We show here how rotation of the stimulating field relieves the angular sensitivity of TMS and provides improvements in both issues. Field rotation is attained by superposing the fields of two coils positioned orthogonal to each other and operated with a relative phase shift in time. Rotating field TMS (rfTMS) efficiently stimulates both cultured hippocampal networks and rat motor cortex, two neuronal systems that are notoriously difficult to excite magnetically. This opens the possibility of pharmacological and invasive TMS experiments in these model systems. Application of rfTMS to human subjects overcomes the orientation dependence of standard TMS. Thus, rfTMS yields optimal targeting of brain regions where correct orientation cannot be determined (e.g., via motor feedback) and will enable stimulation in brain regions where a preferred axonal orientation does not exist.
机译:经颅磁刺激(TMS)是神经病学和精神病学的一项有前途的技术。据报道,例如在双盲,多中心抑郁症研究中,治疗结果令人满意。尽管如此,TMS在研究和治疗脑部疾病中的应用仍然受到受试者间差异和缺乏TMS可访问的模型系统的限制。后者需要对TMS的生物物理基础有更深入的了解,以便可以优化刺激方案以实现最大的大脑反应,而受试者间的可变性则阻碍了跨受试者精确,可靠地传递刺激。最近的研究表明,这两个限制部分是由于TMS的角度敏感性所致。因此,一种消除对线圈的精确角定向的需求的技术将改善TMS的受试者间可靠性及其在模型系统中的有效性。我们在这里展示了刺激场的旋转如何减轻TMS的角度敏感性,并在这两个问题上都提供了改进。磁场旋转是通过叠加两个互相垂直放置并以相对相移在时间上运行的线圈的磁场来实现的。旋转场TMS(rfTMS)有效地刺激了培养的海马网络和大鼠运动皮层,这两个神经元系统众所周知难以磁激发。这打开了在这些模型系统中进行药理和侵入性TMS实验的可能性。 rfTMS在人类受试者上的应用克服了标准TMS的方向依赖性。因此,rfTMS产生不能确定正确取向(例如,通过运动反馈)的脑区域的最佳靶向,并且将能够在不存在优选的轴突取向的脑区域中进行刺激。

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