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PMID: 23483681 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

In vitro strain measurements in cerebral aneurysm models for cyber-physical diagnosis.

Shi C, Kojima M, Anzai H, Tercero C, Ikeda S, Ohta M, Fukuda T, Arai F, Najdovski Z, Negoro M, Irie K

Abstract

The development of new diagnostic technologies for cerebrovascular diseases requires an understanding of the mechanism behind the growth and rupture of cerebral aneurysms. To provide a comprehensive diagnosis and prognosis of this disease, it is desirable to evaluate wall shear stress, pressure, deformation and strain in the aneurysm region, based on information provided by medical imaging technologies. In this research, we propose a new cyber-physical system composed of in vitro dynamic strain experimental measurements and computational fluid dynamics (CFD) simulation for the diagnosis of cerebral aneurysms. A CFD simulation and a scaled-up membranous silicone model of a cerebral aneurysm were completed, based on patient-specific data recorded in August 2008. In vitro blood flow simulation was realized with the use of a specialized pump. A vision system was also developed to measure the strain at different regions on the model by way of pulsating blood flow circulating inside the model. Experimental results show that distance and area strain maxima were larger near the aneurysm neck (0.042 and 0.052), followed by the aneurysm dome (0.023 and 0.04) and finally the main blood vessel section (0.01 and 0.014). These results were complemented by a CFD simulation for the addition of wall shear stress, oscillatory shear index and aneurysm formation index. Diagnosis results using imaging obtained in August 2008 are consistent with the monitored aneurysm growth in 2011. The presented study demonstrates a new experimental platform for measuring dynamic strain within cerebral aneurysms. This platform is also complemented by a CFD simulation for advanced diagnosis and prediction of the growth tendency of an aneurysm in endovascular surgery.

MeSH 主题词
Arterial Pressure Blood Flow Velocity Cerebral Arteries/physiopathology Cerebrovascular Circulation Computer Simulation Cybernetics/methods Elastic Modulus Hardness Humans Intracranial Aneurysm/physiopathology Models, Cardiovascular Shear Strength Tensile Strength Vascular Resistance
作者与单位
共 11 位作者,点击展开单位 / ORCID
Shi Chaoyang
Department of Micro-Nano Systems Engineering, Nagoya University, Japan. [email protected]
Kojima Masahiro
Anzai Hitomi
Tercero Carlos
Ikeda Seiichi
Ohta Makoto
Fukuda Toshio
Arai Fumihito
Najdovski Zoran
Negoro Makoto
Irie Keiko
Article Info
Journal
The international journal of medical robotics + computer assisted surgery : MRCAS
Abbr.
Int J Med Robot
ISSN
1478-596X
Corresponding email
Published
2013-06-00
电子出版
2013-00-11
页码
213-22
Language
English
Country/Region
England
NLM ID
101250764
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