工程血管化类器官芯片模型。

IF 12.8 1区 工程技术 Q1 ENGINEERING, BIOMEDICAL Annual Review of Biomedical Engineering Pub Date : 2021-07-13 Epub Date: 2021-03-23 DOI:10.1146/annurev-bioeng-090120-094330
Venktesh S Shirure, Christopher C W Hughes, Steven C George
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引用次数: 49

摘要

在体外重建人体器官水平的功能是一个快速发展的领域,它整合了组织工程、干细胞生物学和微流体技术来生产3D类器官。所有器官的重要组成部分是脉管系统。在此,我们讨论了创建血管化类器官的一般策略,包括常见的来源材料,并回顾了以前使用血管化类器官重建特定器官功能和模拟肿瘤进展的工作。血管化不仅是单个器官功能的重要组成部分,而且还负责耦合所有器官的命运及其功能。虽然在单个平台上将两个或多个器官耦合在一起已经取得了一些成功,但我们认为,血管化类器官技术的未来在于创建具有组织特异性微血管的类器官系统,并通过动态血管网络将多个器官耦合起来,以创建能够响应不断变化的生理条件的系统。
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Engineering Vascularized Organoid-on-a-Chip Models.

Recreating human organ-level function in vitro is a rapidly evolving field that integrates tissue engineering, stem cell biology, and microfluidic technology to produce 3D organoids. A critical component of all organs is the vasculature. Herein, we discuss general strategies to create vascularized organoids, including common source materials, and survey previous work using vascularized organoids to recreate specific organ functions and simulate tumor progression. Vascularization is not only an essential component of individual organ function but also responsible for coupling the fate of all organs and their functions. While some success in coupling two or more organs together on a single platform has been demonstrated, we argue that the future of vascularized organoid technology lies in creating organoid systems complete with tissue-specific microvasculature and in coupling multiple organs through a dynamic vascular network to create systems that can respond to changing physiological conditions.

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来源期刊
Annual Review of Biomedical Engineering
Annual Review of Biomedical Engineering 工程技术-工程:生物医学
CiteScore
18.80
自引率
0.00%
发文量
14
期刊介绍: Since 1999, the Annual Review of Biomedical Engineering has been capturing major advancements in the expansive realm of biomedical engineering. Encompassing biomechanics, biomaterials, computational genomics and proteomics, tissue engineering, biomonitoring, healthcare engineering, drug delivery, bioelectrical engineering, biochemical engineering, and biomedical imaging, the journal remains a vital resource. The current volume has transitioned from gated to open access through Annual Reviews' Subscribe to Open program, with all articles published under a CC BY license.
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