Fox Peter T, Narayana Shalini, Tandon Nitin, Sandoval Hugo, Fox Sarabeth P, Kochunov Peter, Lancaster Jack L
Research Imaging Center, University of Texas Health Science Center at San Antonio, San Antonio, Texas 78229-3900, USA.
Hum Brain Mapp. 2004 May;22(1):1-14. doi: 10.1002/hbm.20006.
A model to explain the orientation selectivity of the neurophysiologic effects of electric-field transients applied to cerebral cortex is proposed and supported with neuroimaging evidence. Although it is well known that transcranial magnetic stimulation (TMS) excites cerebral cortex in an orientation-selective manner, a neurophysiologically compelling explanation of this phenomenon has been lacking. It is generally presumed that TMS-induced excitation is mediated by horizontal fibers in the cortical surfaces nearest to the stimulating coil, i.e., at the gyral crowns. No evidence exists, however, that horizontal fibers are orientation selective either anatomically or physiologically. We used positron emission tomography to demonstrate that TMS-induced cortical activation is selectively sulcal. This observation allows the well-established columnar organization of cerebral cortex to be invoked to explain the observed orientation selectivity. In addition, Rushton's cosine principle can used to model stimulation efficacy for an electrical field applied at any cortical site at any intensity and in any orientation.
本文提出了一个模型,用于解释施加于大脑皮层的电场瞬变的神经生理效应的方向选择性,并得到了神经影像学证据的支持。虽然众所周知,经颅磁刺激(TMS)以方向选择性的方式激发大脑皮层,但一直缺乏对这一现象的神经生理学上令人信服的解释。一般认为,TMS诱导的兴奋是由最靠近刺激线圈的皮质表面的水平纤维介导的,即在脑回顶部。然而,没有证据表明水平纤维在解剖学或生理学上具有方向选择性。我们使用正电子发射断层扫描来证明TMS诱导的皮质激活具有选择性的脑沟分布。这一观察结果使得可以利用已确立的大脑皮层柱状组织来解释观察到的方向选择性。此外,拉什顿余弦原理可用于模拟在任何强度和任何方向施加于任何皮质部位的电场的刺激效果。