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Hemodynamics of Cerebral Aneurysms: Connecting Medical Imaging and Biomechanical Analysis.
Annual Review of Biomedical Engineering ( IF 9.7 ) Pub Date : 2020-06-05 , DOI: 10.1146/annurev-bioeng-092419-061429
Vitaliy L Rayz 1 , Aaron A Cohen-Gadol 2, 3
Affiliation  

In the last two decades, numerous studies have conducted patient-specific computations of blood flow dynamics in cerebral aneurysms and reported correlations between various hemodynamic metrics and aneurysmal disease progression or treatment outcomes. Nevertheless, intra-aneurysmal flow analysis has not been adopted in current clinical practice, and hemodynamic factors usually are not considered in clinical decision making. This review presents the state of the art in cerebral aneurysm imaging and image-based modeling, discussing the advantages and limitations of each approach and focusing on the translational value of hemodynamic analysis. Combining imaging and modeling data obtained from different flow modalities can improve the accuracy and fidelity of resulting velocity fields and flow-derived factors that are thought to affect aneurysmal disease progression. It is expected that predictive models utilizing hemodynamic factors in combination with patient medical history and morphological data will outperform current risk scores and treatment guidelines. Possible future directions include novel approaches enabling data assimilation and multimodality analysis of cerebral aneurysm hemodynamics.

中文翻译:


脑动脉瘤的血流动力学:连接医学成像和生物力学分析。

在过去的二十年中,许多研究对脑动脉瘤的血流动力学进行了针对患者的计算,并报告了各种血流动力学指标与动脉瘤疾病进展或治疗结果之间的相关性。然而,目前临床实践中尚未采用动脉瘤内流量分析,临床决策中通常不考虑血流动力学因素。本综述介绍了脑动脉瘤成像和基于图像的建模的最新技术,讨论了每种方法的优点和局限性,并着重于血流动力学分析的转化价值。结合从不同流动方式获得的成像和建模数据可以提高结果速度场和流动衍生因素的准确性和保真度,这些因素被认为会影响动脉瘤疾病的进展。预计利用血流动力学因素结合患者病史和形态学数据的预测模型将优于当前的风险评分和治疗指南。未来可能的方向包括能够对脑动脉瘤血流动力学进行数据同化和多模态分析的新方法。

更新日期:2020-06-05
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