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首页> 外文期刊>Cardiovascular engineering and technology >In Vitro Quantification of the Size Distribution of Intrasaccular Voids Left After Endovascular Coiling of Cerebral Aneurysms
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In Vitro Quantification of the Size Distribution of Intrasaccular Voids Left After Endovascular Coiling of Cerebral Aneurysms

机译:体外量化脑动脉瘤血管内盘绕后遗留的囊内空隙的大小分布

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摘要

Endovascular coiling of cerebral aneurysms remains limited by coil compaction and associated recanalization. Recent coil designs which effect higher packing densities may be far from optimal because hemodynamic forces causing compaction are not well understood since detailed data regarding the location and distribution of coil masses are unavailable. We present an in vitro methodology to characterize coil masses deployed within aneurysms by quantifying intra-aneurysmal void spaces. Eight identical aneurysms were packed with coils by both balloon- and stent-assist techniques. The samples were embedded, sequentially sectioned, and imaged. Empty spaces between the coils were numerically filled with circles (2D) in the planar images and with spheres (3D) in the three-dimensional composite images. The 2D and 3D void size histograms were analyzed for local variations and by fitting theoretical probability distribution functions. Balloon-assist packing densities (31 ± 2%) were lower (p = 0.04) than the stent-assist group (40 ± 7%). The maximum and average 2D and 3D void sizes were higher (p = 0.03-0.05) in the balloon-assist group as compared to the stent-assist group. None of the void size histograms were normally distributed; theoretical probability distribution fits suggest that the histograms are most probably exponentially distributed with decay constants of 6-10 mm. Significant (p ≤ 0.001 to p = 0.03) spatial trends were noted with the void sizes but correlation coefficients were generally low (absolute r ≤ 0.35). In conclusion, the methodology we present can provide valuable input data for numerical calculations of hemodynamic forces impinging on intra-aneurysmal coil masses and be used to compare and optimize coil configurations as well as coiling techniques.
机译:脑动脉瘤的血管内盘绕仍受线圈压紧和相关的再通限制。由于缺乏关于线圈质量的位置和分布的详细数据,人们对导致压紧的血液动力没有很好地理解,因此影响较高堆积密度的最新线圈设计可能远非最佳。我们提出了一种体外方法,通过量化动脉瘤内的空隙空间来表征部署在动脉瘤内的线圈块。通过气囊和支架辅助技术将八个相同的动脉瘤塞满线圈。将样品包埋,顺序切片并成像。线圈之间的空白空间在平面图像中用圆圈(2D)和三维合成图像中的球体(3D)数值填充。通过拟合理论概率分布函数,分析了2D和3D空隙尺寸直方图的局部变化。球囊辅助填充密度(31±2%)低于支架辅助组(40±7%)(p = 0.04)。与支架辅助组相比,球囊辅助组的最大和平均2D和3D空隙尺寸更高(p = 0.03-0.05)。空隙尺寸直方图没有一个是正态分布的。理论概率分布拟合表明,直方图最有可能以6-10 mm的衰减常数呈指数分布。空隙尺寸显示出明显的空间趋势(p≤0.001至p = 0.03),但相关系数通常较低(绝对r≤0.35)。总而言之,我们提出的方法可以为有价值的输入数据提供数值计算,以对动脉瘤内部线圈质量的血流动力学力进行冲击,并可以用于比较和优化线圈配置以及线圈技术。

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