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上尿路的流体力学建模。

Fluid mechanical modeling of the upper urinary tract.

机构信息

ARTORG Center for Biomedical Engineering Research, University of Bern, Bern, Switzerland.

Department of Pharmaceutics, UCL School of Pharmacy, University College London, London, UK.

出版信息

WIREs Mech Dis. 2021 Nov;13(6):e1523. doi: 10.1002/wsbm.1523. Epub 2021 Mar 14.

Abstract

The upper urinary tract (UUT) consists of kidneys and ureters, and is an integral part of the human urogenital system. Yet malfunctioning and complications of the UUT can happen at all stages of life, attributed to reasons such as congenital anomalies, urinary tract infections, urolithiasis and urothelial cancers, all of which require urological interventions and significantly compromise patients' quality of life. Therefore, many models have been developed to address the relevant scientific and clinical challenges of the UUT. Of all approaches, fluid mechanical modeling serves a pivotal role and various methods have been employed to develop physiologically meaningful models. In this article, we provide an overview on the historical evolution of fluid mechanical models of UUT that utilize theoretical, computational, and experimental approaches. Descriptions of the physiological functionality of each component are also given and the mechanical characterizations associated with the UUT are provided. As such, it is our aim to offer a brief summary of the current knowledge of the subject, and provide a comprehensive introduction for engineers, scientists, and clinicians who are interested in the field of fluid mechanical modeling of UUT. This article is categorized under: Cancer > Biomedical Engineering Infectious Diseases > Biomedical Engineering Reproductive System Diseases > Biomedical Engineering.

摘要

上尿路(UUT)由肾脏和输尿管组成,是人体泌尿生殖系统的一个组成部分。然而,由于先天异常、尿路感染、尿路结石和尿路上皮癌等原因,UUT 在生命的各个阶段都可能出现功能障碍和并发症,这些都需要泌尿科干预,并严重影响患者的生活质量。因此,已经开发了许多模型来应对 UUT 的相关科学和临床挑战。在所有方法中,流体力学建模起着关键作用,并且已经采用了各种方法来开发具有生理意义的模型。在本文中,我们提供了一个利用理论、计算和实验方法的 UUT 流体力学模型的历史演变概述。还给出了每个组件的生理功能描述,并提供了与 UUT 相关的力学特性。因此,我们的目的是简要总结该主题的现有知识,并为有兴趣研究 UUT 流体力学建模领域的工程师、科学家和临床医生提供全面的介绍。本文属于以下分类:癌症 > 生物医学工程传染病 > 生物医学工程生殖系统疾病 > 生物医学工程

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