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用于构建体外管状血管模型的生物打印方法

Bioprinting Methods for Fabricating In Vitro Tubular Blood Vessel Models.

作者信息

Kim Seon-Jin, Kim Min-Gyun, Kim Jangho, Jeon Jessie S, Park Jinsoo, Yi Hee-Gyeong

机构信息

Department of Rural and Biosystems Engineering, College of Agriculture and Life Sciences, Chonnam National University, Gwangju, Republic of Korea.

Interdisciplinary Program in IT-Bio Convergence System, Chonnam National University, Gwangju 61186, Republic of Korea.

出版信息

Cyborg Bionic Syst. 2023 Aug 1;4:0043. doi: 10.34133/cbsystems.0043. eCollection 2023.

Abstract

Dysfunctional blood vessels are implicated in various diseases, including cardiovascular diseases, neurodegenerative diseases, and cancer. Several studies have attempted to prevent and treat vascular diseases and understand interactions between these diseases and blood vessels across different organs and tissues. Initial studies were conducted using 2-dimensional (2D) in vitro and animal models. However, these models have difficulties in mimicking the 3D microenvironment in human, simulating kinetics related to cell activities, and replicating human pathophysiology; in addition, 3D models involve remarkably high costs. Thus, in vitro bioengineered models (BMs) have recently gained attention. BMs created through biofabrication based on tissue engineering and regenerative medicine are breakthrough models that can overcome limitations of 2D and animal models. They can also simulate the natural microenvironment in a patient- and target-specific manner. In this review, we will introduce 3D bioprinting methods for fabricating bioengineered blood vessel models, which can serve as the basis for treating and preventing various vascular diseases. Additionally, we will describe possible advancements from tubular to vascular models. Last, we will discuss specific applications, limitations, and future perspectives of fabricated BMs.

摘要

功能失调的血管与多种疾病有关,包括心血管疾病、神经退行性疾病和癌症。多项研究试图预防和治疗血管疾病,并了解这些疾病与不同器官和组织中的血管之间的相互作用。最初的研究是使用二维(2D)体外和动物模型进行的。然而,这些模型在模拟人体三维微环境、模拟与细胞活动相关的动力学以及复制人类病理生理学方面存在困难;此外,三维模型成本极高。因此,体外生物工程模型(BMs)最近受到了关注。通过基于组织工程和再生医学的生物制造创建的BMs是能够克服二维和动物模型局限性的突破性模型。它们还可以以患者和靶点特异性的方式模拟自然微环境。在这篇综述中,我们将介绍用于制造生物工程血管模型的三维生物打印方法,这些模型可作为治疗和预防各种血管疾病的基础。此外,我们将描述从管状模型到血管模型可能取得的进展。最后,我们将讨论制造的BMs的具体应用、局限性和未来前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3a0e/10393580/c64889690745/cbsystems.0043.fig.001.jpg

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