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Transport of Vascular Microbubbles through Multiple Vessel Bifurcations:A Model Study

机译:通过多血管分叉运输血管微泡:模型研究

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To model vascular bubble transport, we experimentally and theoretically investigated the transport of long gas bubbles suspended in liquid flowing through bifurcating vessel network. This work is motivated by a novel gas em-bolotherapy that we are developing. In this approach, perflu-rocarbon microbubbles are selectively formed in vivo and subsequently lodge to occlude blood flow to tumors. The bubbles originate from encapsulated liquid droplets that are small enough to pass through capillaries, allowing intravenous injection. The homogeneity of tumor necrosis depends on the transport and lodging of emboli. We used a bench top experimental model to explore the effects of flow pulsatility, heart rate, gravity, and bifurcation roll angle on bubble splitting and subsequent bubble lodging. We developed a corresponding time-dependent one-dimensional theoretical model. At a bifurcation roll angle of 45-degrees, the most distinct difference in splitting ratios between three physiologic frequencies was observed. The volume of lodged bubbles in the first generation channel was higher increased with roll angle, while bubble volume beyond the second bifurcation decreased with roll angle. The results elucidate the effects of pulsatile flow, and suggest the potential of gas embolotherapy to uniformly occlude blood flow to tumors. These vascular microbubble transport findings are also relevant to air embolism.
机译:为了模型血管泡沫运输,我们通过实验和理论地研究了悬浮在流动的液体中的长气泡的运输。这项工作受到我们正在开发的新型燃气EM-Bolotherapy的动机。在这种方法中,完全rocarbon微泡被选择性地形成体内并随后提取到呼吸血液流向肿瘤。气泡源自封装的液滴,足以通过毛细血管,允许静脉注射。肿瘤坏死的均匀性取决于栓子的运输和住宿。我们使用了台面上的实验模型来探索流动脉冲,心率,重力和分叉角度对气泡分裂和随后的泡沫覆盖的影响。我们开发了相应的时间依赖的一维理论模型。在分叉卷角为45度,观察到三种生理频率之间的分裂比的最明显差异。第一代沟道中的加减气泡的体积较高,滚动角度较高,而第二分叉的气泡体积随辊角减小。结果阐明了脉动流动的影响,并提出了煤气栓塞的潜力均匀地闭塞血液流向肿瘤。这些血管微胶石运输结果与空气栓塞也相关。

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