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Design and application of a novel gastric pacemaker

机译:一种新型胃起搏器的设计与应用

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摘要

Omnipresent bioelectrical events known as slow waves are responsible for coordinating motility in the gastrointestinal tract. Functional motility diseases, such as gastroparesis, are associated with slow wave dysrhythmias. Electrical stimulation is a potential therapy to correct abnormal slow wave patterns. We present the design and application of a new gastric pacemaker. Real-time changes to the stimulation parameters such as period, amplitude and pulse width were applied using a graphical user interface, which communicated with the microcontroller to deliver the stimulus. The new pacemaker allows the voltage, delivered current and resistance between pacing electrodes to be continuously monitored. The pacing device was applied experimentally and was able to modulate and entrain gastric slow wave activity. After the onset of pacing, the direction of slow wave propagation was altered. Furthermore, the mean velocity and amplitude of slow wave activity increased from 4.7±1.5 to 5.4±1.3 mm/s, and from 1.1±1.1 to 1.7±0.9 mV, respectively. A simplified bidomain electrical model was used to simulate the recorded stimulus artifact. The model illustrated a new approach to evaluate if the stimulus has been delivered to the gastric tissue. The new pacing device and model will be used to investigate the mechanisms that allow pacing to entrain slow wave activity.
机译:被称为慢波的全能生物电器事件负责胃肠道中的配位运动。功能性动力疾病,例如胃瘫,与慢波畸形瘤相关。电刺激是校正异常慢波模式的潜在疗法。我们介绍了一种新的胃起搏器的设计和应用。使用与微控制器连通的图形用户界面来施加对刺激参数的实时改变,例如周期,幅度和脉冲宽度,以传送刺激。新的起搏器允许连续监测起搏器之间的电压,输送电流和搏动电极之间的电阻。起搏装置进行实验应用,并能够调节和夹带胃慢波活动。起搏后,缓慢波传播的方向被改变。此外,慢波活性的平均速度和幅度分别从4.7±1.5到5.4±1.3mm / s增加,分别为1.1±1.1至1.7±0.9 mV。简化的Bidomain电气模型用于模拟记录的刺激伪影。该模型说明了一种评估刺激是否已递送到胃组织的新方法。新的起搏装置和模型将用于调查允许起搏捕获慢波活动的机制。

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