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Titlebook: Vascular Engineering; New Prospects of Vas Kazuo Tanishita,Kimiko Yamamoto Book 2016 Springer Japan 2016 atherosclerosis.biomaterials.endot

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发表于 2025-3-21 18:50:01 | 显示全部楼层 |阅读模式
书目名称Vascular Engineering
副标题New Prospects of Vas
编辑Kazuo Tanishita,Kimiko Yamamoto
视频video
概述Examines the interdisciplinary field of vascular engineering from understanding the functionality of the circulatory system to the implications for innovative medical treatments.Covers cutting-edge re
图书封面Titlebook: Vascular Engineering; New Prospects of Vas Kazuo Tanishita,Kimiko Yamamoto Book 2016 Springer Japan 2016 atherosclerosis.biomaterials.endot
描述This book describes the fundamental biology and mechanics of the vasculature and examines how this knowledge has underpinned the development of new clinical modalities, including endovascular treatment and vascularization of reconstructed tissue for regenerative medicine. Vascular engineering is a multidisciplinary field integrating vascular biology, hemodynamics, biomechanics, tissue engineering, and medicine. Each chapter offers insights into the dynamics of the circulatory system and explains how the impact of related disease conditions — atherosclerosis, hypertension, myocardial ischemia, and cerebral infarction — has generated a focus on developing expertise to both maintain and treat the vascular system. .As a comprehensive book in this expanding area, Vascular Engineering serves as a valuable resource for clinicians as well as academics and professionals working in biophysics, biomedical engineering, and nano and microrheology. Graduate students in these subject areas will also find this volume insightful..
出版日期Book 2016
关键词atherosclerosis; biomaterials; endothelium; hemodynamics; regeneration; vascularization
版次1
doihttps://doi.org/10.1007/978-4-431-54801-0
isbn_softcover978-4-431-56635-9
isbn_ebook978-4-431-54801-0
copyrightSpringer Japan 2016
The information of publication is updating

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发表于 2025-3-21 20:49:17 | 显示全部楼层
Fundamentals of Vascular Bio-fluid and Solid Mechanics,um mechanics for a large deformation of the vascular wall. Then, we introduce passive hyperelastic models, an active smooth muscle model, and incorporations of residual strain and smooth muscle contractions. We demonstrate typical axisymmetric solutions of arterial wall stress for a tube model under
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Mechanical Characterization of Vascular Endothelial Cells Exposed to Fluid Shear Stress,udying endothelial cell responses to flow has lead to the development of different types of flow chambers. Conventional flow chambers include a cone-and-plate flow chamber and a parallel-plate flow chamber, while more recently, microfluidic flow chambers have emerged with a great potential for a hig
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Tensile Properties of Smooth Muscle Cells, Elastin, and Collagen Fibers,ssues and cell at a microscopic scale and review the tensile properties of VSMCs in detail, and then, those of elastin and collagen fibers. In contrast to elastin and collagen fibers that are simple passive materials, VSMCs are alive and their mechanical properties are highly complicated. Their mech
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Mechanotransduction of Shear Stress by the Endothelium,lating leukocytes and platelets, and changes in vascular diameter. Therefore, understanding the mechanobiology of endothelial cells is at the heart of promoting vascular health and predicting, diagnosing, treating, and preventing vascular disease.
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Vascular Engineering of Circulatory Assist Devices,emphasis is placed on recent progress in ventricular assist devices and cardiopulmonary bypass pumps. These important medical devices assist with human circulation at either the chronic or the acute phase. Because these devices are derived from an industrial pump, a great many studies have been cond
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