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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H. Journal of Engineering in Medicine >Three-dimensional nonlinear finite element model to estimate backflow during flow-controlled infusions into the brain
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Three-dimensional nonlinear finite element model to estimate backflow during flow-controlled infusions into the brain

机译:三维非线性有限元模型,以估算流量控制输注过程中的回流

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Convection-enhanced delivery is a technique to bypass the blood-brain barrier and deliver therapeutic drugs into the brain tissue. However, animal investigations and preliminary clinical trials have reported reduced efficacy to transport the infused drug in specific zones, attributed mainly to backflow, in which an annular gap is formed outside the catheter and the fluid preferentially flows toward the surface of the brain rather than through the tissue in front of the cannula tip. In this study, a three-dimensional human brain finite element model of backflow was developed to study the influence of anatomical structures during flow-controlled infusions. Predictions of backflow length were compared under the influence of ventricular pressure and the distance between the cannula and the ventricles. Simulations with zero relative ventricle pressure displayed similar backflow length predictions for larger cannula-ventricle distances. In addition, infusions near the ventricles revealed smaller backflow length and the liquid was observed to escape to the longitudinal fissure and ventricular cavities. Simulations with larger cannula-ventricle distances and nonzero relative ventricular pressure showed an increase of fluid flow through the tissue and away from the ventricles. These results reveal the importance of considering both the subject-specific anatomical details and the nonlinear effects in models focused on analyzing current and potential treatment options associated with convection-enhanced delivery optimization for future clinical trials.
机译:对流增强的递送是一种绕过血脑屏障并将治疗药物递送到脑组织中的技术。然而,动物调查和初步临床试验已经报道了将流入药物的特定区域中的疗效降低,主要是回流,其中环形间隙形成在导管外部,并且流体优先流向大脑的表面而不是通过套管前面的组织尖端。在这项研究中,开发了一种三维人脑有限元模型,以研究在流量控制输注过程中解剖结构的影响。在心室压力和套管和心室之间的距离的影响下比较了回流长度的预测。零相对心室压力的模拟显示了较大的套管 - 心室距离的类似回流长度预测。此外,靠近心室的输注揭示了较小的回流长度,观察到液体逸出到纵向裂缝和心室腔。具有较大的套管 - 心室距离和非零相对心室压力的模拟显示,通过组织和远离心室的流体流动的增加。这些结果揭示了考虑对象特异性解剖细节和模型中的非线性效应的重要性,其专注于分析与对流增强的递送优化相关的当前和潜在的治疗方案,以便未来的临床试验。

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