Hsiao I N, Lin V W
Department of Physical Medicine and Rehabilitation, School of Medicine, University of California, Irvine 92717, USA.
IEEE Trans Biomed Eng. 2001 Jun;48(6):684-94. doi: 10.1109/10.923786.
Our studies have demonstrated effective stimulation of the expiratory muscles in patients with spinal cord injury (SCI) using functional magnetic stimulation (FMS). The observed contraction of the expiratory muscles and functional improvement of the pulmonary functions make functional magnetic stimulation an appropriate tool for expiratory muscle training. To fully capitalize on the benefits of FMS for expiratory muscle training, this study aimed to optimize the magnetic coils (MCs). The primary goal of this study was to investigate how two parameters of the MC size and winding structure, would affect expiratory muscle training. By varying these parameters, our approach was to conceptualize and evaluate the induced electric field and nerve activation function distributions of six coils, round 9.2, 13.7, and 20 cm, and spiral 9.2-, 13.7-, and 20-cm coils in the computer modeling phase. Round 9.2 cm, spiral 13.7 cm, and spiral 20-cm coils were also evaluated in experimental studies for induced electrical field and in clinical studies of expiratory muscles. Both the computer models and experimental measurements indicated that the spiral 20-cm coil can not only stimulate more expiratory spinal nerves but can also stimulate them more evenly. In addition, coils with larger diameters had better penetration than those with smaller diameters. The clinical results showed that the spiral 20-cm coil produced higher expiratory pressure, flow, and volume in five able-bodied subjects, and it was the coil of choice among the subjects when asked their preferences. In our attempt to optimize MC design for FMS of expiratory muscle training, we followed the designing guidelines set out in our previous study and arrived at a more effective tool.
我们的研究表明,使用功能性磁刺激(FMS)可有效刺激脊髓损伤(SCI)患者的呼气肌。观察到的呼气肌收缩和肺功能的功能改善使功能性磁刺激成为呼气肌训练的合适工具。为了充分利用FMS在呼气肌训练中的益处,本研究旨在优化磁线圈(MCs)。本研究的主要目标是研究MC尺寸和绕组结构这两个参数如何影响呼气肌训练。通过改变这些参数,我们的方法是在计算机建模阶段概念化和评估六种线圈的感应电场和神经激活函数分布,即圆形9.2、13.7和20厘米的线圈,以及螺旋形9.2、13.7和20厘米的线圈。在实验研究中还评估了圆形9.2厘米、螺旋形13.7厘米和螺旋形20厘米的线圈的感应电场,并在呼气肌的临床研究中进行了评估。计算机模型和实验测量均表明,螺旋形20厘米的线圈不仅可以刺激更多的呼气脊髓神经,而且可以更均匀地刺激它们。此外,直径较大的线圈比直径较小的线圈具有更好的穿透性。临床结果表明,螺旋形20厘米的线圈在五名健康受试者中产生了更高的呼气压力、流量和容积,并且在询问受试者偏好时,它是受试者的首选线圈。在我们试图优化用于呼气肌训练的FMS的MC设计时,我们遵循了我们先前研究中提出的设计指南,并得出了一种更有效的工具。