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基于体内图像的功能性和反流性二尖瓣动力学的四维建模

In Vivo Image-Based 4D Modeling of Competent and Regurgitant Mitral Valve Dynamics.

作者信息

Aly A H, Aly A H, Lai E K, Yushkevich N, Stoffers R H, Gorman J H, Cheung A T, Gorman J H, Gorman R C, Yushkevich P A, Pouch A M

机构信息

Department of Radiology, University of Pennsylvania, Philadelphia, PA, USA.

Department of Bioengineering, University of Pennsylvania, Philadelphia, PA, USA.

出版信息

Exp Mech. 2021 Jan;61(1):159-169. doi: 10.1007/s11340-020-00656-8. Epub 2020 Aug 17.

Abstract

BACKGROUND

In vivo characterization of mitral valve dynamics relies on image analysis algorithms that accurately reconstruct valve morphology and motion from clinical images. The goal of such algorithms is to provide patient-specific descriptions of both competent and regurgitant mitral valves, which can be used as input to biomechanical analyses and provide insights into the pathophysiology of diseases like ischemic mitral regurgitation (IMR).

OBJECTIVE

The goal is to generate accurate image-based representations of valve dynamics that visually and quantitatively capture normal and pathological valve function.

METHODS

We present a novel framework for 4D segmentation and geometric modeling of the mitral valve in real-time 3D echocardiography (rt-3DE), an imaging modality used for pre-operative surgical planning of mitral interventions. The framework integrates groupwise multi-atlas label fusion and template-based medial modeling with Kalman filtering to generate quantitatively descriptive and temporally consistent models of valve dynamics.

RESULTS

The algorithm is evaluated on rt-3DE data series from 28 patients: 14 with normal mitral valve morphology and 14 with severe IMR. In these 28 data series that total 613 individual 3DE images, each 3D mitral valve segmentation is validated against manual tracing, and temporal consistency between segmentations is demonstrated.

CONCLUSIONS

Automated 4D image analysis allows for reliable non-invasive modeling of the mitral valve over the cardiac cycle for comparison of annular and leaflet dynamics in pathological and normal mitral valves. Future studies can apply this algorithm to cardiovascular mechanics applications, including patient-specific strain estimation, fluid dynamics simulation, inverse finite element analysis, and risk stratification for surgical treatment.

摘要

背景

二尖瓣动力学的体内特征依赖于图像分析算法,该算法可从临床图像中准确重建瓣膜形态和运动。此类算法的目标是提供针对有功能的和反流的二尖瓣的患者特异性描述,这些描述可用作生物力学分析的输入,并深入了解诸如缺血性二尖瓣反流(IMR)等疾病的病理生理学。

目的

目标是生成基于图像的准确瓣膜动力学表示,以视觉和定量方式捕捉正常和病理瓣膜功能。

方法

我们提出了一种用于实时三维超声心动图(rt-3DE)中二尖瓣的四维分割和几何建模的新框架,rt-3DE是一种用于二尖瓣干预术前手术规划的成像模态。该框架将组内多图谱标签融合和基于模板的中轴建模与卡尔曼滤波相结合,以生成定量描述且时间上一致的瓣膜动力学模型。

结果

该算法在来自28名患者的rt-3DE数据系列上进行了评估:14名二尖瓣形态正常,14名患有严重IMR。在这28个总计613张个体三维超声心动图图像的数据系列中,每个三维二尖瓣分割均对照手动追踪进行了验证,并展示了分割之间的时间一致性。

结论

自动化的四维图像分析允许在心动周期内对二尖瓣进行可靠的非侵入性建模,以比较病理和正常二尖瓣的瓣环和瓣叶动力学。未来的研究可以将此算法应用于心血管力学应用,包括患者特异性应变估计、流体动力学模拟、逆向有限元分析以及手术治疗的风险分层。

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Spatiotemporal Segmentation and Modeling of the Mitral Valve in Real-Time 3D Echocardiographic Images.实时三维超声心动图图像中二尖瓣的时空分割与建模
Med Image Comput Comput Assist Interv. 2017 Sep;10433:746-754. doi: 10.1007/978-3-319-66182-7_85. Epub 2017 Sep 4.

本文引用的文献

3
Spatiotemporal Segmentation and Modeling of the Mitral Valve in Real-Time 3D Echocardiographic Images.实时三维超声心动图图像中二尖瓣的时空分割与建模
Med Image Comput Comput Assist Interv. 2017 Sep;10433:746-754. doi: 10.1007/978-3-319-66182-7_85. Epub 2017 Sep 4.

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