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PMID: 28652298 Published · ppublish English Journal Article

A patient-specific intracranial aneurysm model with endothelial lining: a novel in vitro approach to bridge the gap between biology and flow dynamics.

Journal of neurointerventional surgery ·Vol. 10 ·No. 3 ·2018-03-00 ·页码 306-309

Kaneko N, Mashiko T, Namba K, Tateshima S, Watanabe E, Kawai K

Abstract

To develop an in vitro model for studying the biological effect of complex-flow stress on endothelial cells in three-dimensional (3D) patient-specific vascular geometry. A vessel replica was fabricated with polydimethylsiloxanes using 3D printing technology from vascular image data acquired by rotational angiography. The vascular model was coated with fibronectin and immersed in a tube filled with a cell suspension of endothelium, and then cultured while being slowly rotated in three dimensions. Culture medium with viscosity was perfused in the circulation with the endothelialized vascular model. A computational fluid dynamics (CFD) study was conducted using perfusion conditions used in the flow experiment. The morphology of endothelial cells was observed under a confocal microscope. The CFD study showed low wall shear stress and circulating flow in the apex of the basilar tip aneurysm, with linear flow in the parent artery. Confocal imaging demonstrated that the inner surface of the vascular model was evenly covered with monolayer endothelial cells. After 24 h of flow circulation, endothelial cells in the parent artery exhibited a spindle shape and aligned with the flow direction. In contrast, endothelial cells in the aneurysmal apex were irregular in shape and size. A geometrically realistic intracranial aneurysm model with live endothelial lining was successfully developed. This in vitro model enables a new research approach combining study of the biological impact of complex flow on endothelial cells with CFD analysis and patient information, including the presence of aneurysmal growth or rupture.

Keywords
aneurysm blood flow technology vessel wall
MeSH 主题词
Angiography/methods Animals Blood Flow Velocity/physiology Cattle Computer Simulation Endothelium, Vascular/cytology,pathology Humans Hydrodynamics Intracranial Aneurysm/pathology,physiopathology Models, Cardiovascular Printing, Three-Dimensional Stress, Mechanical Viscosity
作者与单位
共 6 位作者,点击展开单位 / ORCID
Kaneko Naoki
Department of Neurosurgery, Jichi Medical University, Shimotsuke, Japan. | Division of Interventional Neuroradiology, University of California, Los Angeles, Los Angeles, California, USA.
Mashiko Toshihiro
Department of Neurosurgery, Jichi Medical University, Shimotsuke, Japan.
Namba Katsunari
Department of Endovascular Surgery, Jichi Medical University, Shimotsuke, Japan.
Tateshima Satoshi
Division of Interventional Neuroradiology, University of California, Los Angeles, Los Angeles, California, USA.
Watanabe Eiju
Department of Neurosurgery, Jichi Medical University, Shimotsuke, Japan.
Kawai Kensuke
Department of Neurosurgery, Jichi Medical University, Shimotsuke, Japan.
Article Info
Journal
Journal of neurointerventional surgery
Abbr.
J Neurointerv Surg
ISSN
1759-8486
Published
2018-03-00
电子出版
2017-00-26
页码
306-309
Language
English
Country/Region
England
NLM ID
101517079
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