A Preliminary Study of Fast Virtual Stent-Graft Deployment: Application to Stanford Type B Aortic Dissection

Author:

Chen Duanduan1,Müller-Eschner Matthias2,Rengier Fabian2,Kotelis Drosos3,Böckler Dittmar3,Ventikos Yiannis4,Xu Yong5,Zeng Yanjun6,Peng Yuhua1,von Tengg-Kobligk Hendrik27

Affiliation:

1. School of Life Science, Beijing Institute of Technology, China

2. Department of Diagnostic and Interventional Radiology, University Hospital Heidelberg, Germany

3. Department of Vascular Surgery, University Hospital Heidelberg, Germany

4. Department of Engineering Science & Institute of Biomedical Engineering, University of Oxford, UK

5. General Hospital of Chinese PLA, China

6. Biomechanics and Medical Information Institute, Beijing University of Technology, China

7. Radiology, German Cancer Research Center (dkfz), Heidelberg, Germany

Abstract

Aortic dissection is the result of blood intruding into the layers of the aortic wall creating a duplicate channel along the aortic course. This considerably changes aortic morphology and thereby alters blood flow, inducing severe pathological conditions. Endovascular stent-graft placement has become an accepted treatment option for complicated Stanford type B aortic dissection. Stent-graft deployment aims to cover the primary entry, preventing most of the inflow to the false lumen, thereby promoting false lumen thrombosis and true lumen expansion. In recent years the application of this treatment has increased continuously. However, a fast and reasonable prediction for the released stent-graft and the resulting aortic remodelling prior to intervention is still lacking. In this paper, we propose a preliminary study on the fast virtual stent-graft deployment algorithm based on contact mechanics, spring analogy and deformable meshes. By virtually releasing a stent-graft in a patient-specific model of an aortic dissection type Stanford B, we simulate the interaction between the expanding stent-graft and the vessel wall (with low computational cost), and estimate the post-interventional configuration of the true lumen. This preliminary study can be finished within minutes and the results present good consistency with the post-interventional computed tomography angiography. It therefore confirms the feasibility and rationality of this algorithm, encouraging further research on this topic, which may provide more accurate results and could assist in medical decision-making.

Publisher

SAGE Publications

Subject

Artificial Intelligence,Computer Science Applications,Software

Cited by 8 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Model reduction methodology for computational simulations of endovascular repair;Computer Methods in Biomechanics and Biomedical Engineering;2018-01-25

2. Virtual stenting with simplex mesh and mechanical contact analysis for real-time planning of thoracic endovascular aortic repair;Theranostics;2018

3. Effectiveness of Aortic Dissection Treatments via Virtual Stenting;Aortic Dissection: Simulation Tools for Disease Management and Understanding;2018

4. Introduction;Aortic Dissection: Simulation Tools for Disease Management and Understanding;2018

5. Predicting the effect on pulse wave reflection of different endovascular repair techniques in abdominal aortic aneurysm using 1D patient-specific models;Health and Technology;2016-10-01

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