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Feasibility of High-Resolution Electrical Mapping for Characterizing Conduction Blocks Created by Gastric Ablation

机译:高分辨率电测图表征由胃消融产生的传导阻滞的可行性

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The interstitial cells of Cajal (ICC) initiate, coordinate and propagate bioelectrical slow wave activity that drives gastric motility. In the healthy human stomach, slow wave activity is highly organized. Gastric motility disorders are associated with dysrhythmias. While ablation is widely used to treat cardiac dysrhythmias, this approach has yet to be trialed in the stomach. In this study, radiofrequency (RF) ablation was applied in pig stomachs in vivo to create targeted electrical conduction blocks. Ablations were performed at temperature control mode (55-70°C), and resultant conduction blocks were identified and verified using high-resolution electrical mapping. Termination of slow wave propagation at ablation sites was confirmed by a decrease in extracellular slow wave amplitude from 1.7 ± 0.2 mV to an undetectable amplitude, as well as spatiotemporal pattern analysis of conduction blocks. The use of high-resolution electrical mapping can now be employed to investigate ablation as a potential therapy for gastric dysrhythmias in motility disorders.
机译:Cajal的间质细胞(ICC)启动,协调并传播驱动胃动力的生物电慢波活动。在健康的人胃中,慢波活动具有高度的组织性。胃动力障碍与心律不齐有关。尽管消融被广泛用于治疗心律不齐,但这种方法尚待在胃中试用。在这项研究中,射频(RF)消融应用于体内的猪胃中,以创建有针对性的电传导阻滞。在温度控制模式下(55-70°C)进行消融,并使用高分辨率电图识别并验证了产生的传导阻滞。通过将胞外慢波幅度从1.7±0.2 mV降低到无法检测的幅度,以及对传导阻滞进行时空模式分析,证实了消融部位慢波传播的终止。现在可以使用高分辨率的电子绘图来研究消融,将其作为运动性疾病中胃律不齐的一种潜在疗法。

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