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用于治疗心律失常的冻融冷冻消融方案的模拟与评估。

Simulation and evaluation of freeze-thaw cryoablation scenarios for the treatment of cardiac arrhythmias.

作者信息

Handler Michael, Fischer Gerald, Seger Michael, Kienast Roland, Hanser Friedrich, Baumgartner Christian

机构信息

Institute of Electrical and Biomedical Engineering, University for Health Sciences, Medical Informatics and Technology, Eduard Wallnöfer-Zentrum 1, Hall in Tirol, 6060, Austria.

AFreeze GmbH, Eduard Bodem Gasse 8, Innsbruck, 6020, Austria.

出版信息

Biomed Eng Online. 2015 Feb 18;14:12. doi: 10.1186/s12938-015-0005-9.

Abstract

BACKGROUND

Cardiac cryoablation is a minimally invasive procedure to treat cardiac arrhythmias by cooling cardiac tissues responsible for the cardiac arrhythmia to freezing temperatures. Although cardiac cryoablation offers a gentler treatment than radiofrequency ablation, longer interventions and higher recurrence rates reduce the clinical acceptance of this technique. Computer models of ablation scenarios allow for a closer examination of temperature distributions in the myocardium and evaluation of specific effects of applied freeze-thaw protocols in a controlled environment.

METHODS

In this work multiple intervention scenarios with two freeze-thaw cycles were simulated with varying durations and starting times of the interim thawing phase using a finite element model verified by in-vivo measurements and data from literature. To evaluate the effects of different protocols, transmural temperature distributions and iceball dimensions were compared over time. Cryoadhesion durations of the applicator were estimated in the interim thawing phase with varying thawing phase starting times. In addition, the increase of cooling rates was compared between the freezing phases, and the thawing rates of interim thawing phases were analyzed over transmural depth.

RESULTS

It could be shown that the increase of cooling rate, the regions undergoing additional phase changes and depths of selected temperatures depend on the chosen ablation protocol. Only small differences of the estimated cryoadhesion duration were found for ablation scenarios with interim thawing phase start after 90 s freezing.

CONCLUSIONS

By the presented model a quantification of effects responsible for cell death is possible, allowing for the analysis and optimization of cryoablation scenarios which contribute to a higher clinical acceptance of cardiac cryoablation.

摘要

背景

心脏冷冻消融是一种微创手术,通过将导致心律失常的心脏组织冷却至冰点温度来治疗心律失常。尽管心脏冷冻消融比射频消融提供了更温和的治疗方式,但更长的干预时间和更高的复发率降低了该技术的临床接受度。消融场景的计算机模型有助于在可控环境中更仔细地检查心肌中的温度分布,并评估应用的冻融方案的具体效果。

方法

在这项工作中,使用经过体内测量和文献数据验证的有限元模型,模拟了具有两个冻融循环的多种干预场景,其中中间解冻阶段的持续时间和开始时间各不相同。为了评估不同方案的效果,比较了随时间变化的透壁温度分布和冰球尺寸。在中间解冻阶段,根据不同的解冻阶段开始时间估计施加器的冷冻粘连持续时间。此外,比较了冷冻阶段之间冷却速率的增加,并分析了中间解冻阶段在透壁深度上的解冻速率。

结果

可以表明,冷却速率的增加、经历额外相变的区域以及选定温度的深度取决于所选的消融方案。对于在冷冻90秒后开始中间解冻阶段的消融场景,估计的冷冻粘连持续时间仅存在微小差异。

结论

通过所提出的模型,可以对导致细胞死亡的效应进行量化,从而有助于分析和优化冷冻消融场景,提高心脏冷冻消融的临床接受度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1184/4369072/507bbe54f3b9/12938_2015_5_Fig1_HTML.jpg

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