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A Computer Simulation Study of Anatomy Induced Drift of Spiral Waves in the Human Atrium

机译:解剖学诱导人体荨麻疹螺旋波漂移的计算机仿真研究

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摘要

The interaction of spiral waves of excitation with atrial anatomy remains unclear. This simulation study isolates the role of atrial anatomical structures on spiral wave spontaneous drift in the human atrium. We implemented realistic and idealised 3D human atria models to investigate the functional impact of anatomical structures on the long-term (~40s) behaviour of spiral waves. The drift of a spiral wave was quantified by tracing its tip trajectory, which was correlated to atrial anatomical features. The interaction of spiral waves with the following idealised geometries was investigated: (a) a wedge-like structure with a continuously varying atrial wall thickness; (b) a ridge-like structure with a sudden change in atrial wall thickness; (c) multiple bridge-like structures consisting of a bridge connected to the atrial wall. Spiral waves drifted from thicker to thinner regions and along ridge-like structures. Breakthrough patterns caused by pectinate muscles (PM) bridges were also observed, albeit infrequently. Apparent anchoring close to PM-atrial wall junctions was observed. These observations were similar in both the realistic and the idealised models. We conclude that spatially altering atrial wall thickness is a significant cause of drift of spiral waves. PM bridges cause breakthrough patterns and induce transient anchoring of spiral waves.
机译:螺旋波激发与心房解剖学的相互作用仍不清楚。这种仿真研究分离了心房解剖结构对人类中庭螺旋波自发漂移的作用。我们实施了现实和理想化的3D人类Atria模型,以研究解剖结构对螺旋波的长期(〜40秒)行为的功能影响。通过追踪其尖端轨迹量化螺旋波的漂移,其与心房解剖特征相关。研究了螺旋波与以下理想几何形状的相互作用:(a)(a)楔形结构,具有连续变化的心房厚度; (b)脊状结构突然变化的心房厚度; (c)由连接到心房壁的桥组成的多个桥状结构。螺旋波从较厚的区域和沿脊状结构漂移。也观察到由​​果胶肌(PM)桥梁引起的突破图案,虽然不经常。观察到靠近PM-心房结的显而易见的锚定。这些观察结果在真实性和理想化的模型中相似。我们得出结论,空间改变的心房壁厚是螺旋波漂移的重要原因。 PM桥梁导致突破图案并诱导螺旋波的瞬态锚固。

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