Division of Engineering in Medicine, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Cambridge, United States.
State Key Laboratory of Pulp and Paper Engineering, South China University of Technology, Guangzhou, China.
Curr Pharm Des. 2018;24(45):5367-5374. doi: 10.2174/1381612824666180416114325.
The role of endovascular interventions has progressed rapidly over the past several decades. While animal models have long-served as the mainstay for the advancement of this field, the use of in vitro models has become increasingly widely adopted with recent advances in engineering technologies. Here, we review the strategies, mainly including bioprinting and microfabrication, which allow for fabrication of biomimetic vascular models that will potentially serve to supplement the conventional animal models for convenient investigations of endovascular interventions. Besides normal blood vessels, those in diseased states, such as thrombosis, may also be modeled by integrating cues that simulate the microenvironment of vascular disorders. These novel engineering strategies for the development of biomimetic in vitro vascular structures will possibly enable unconventional means of studying complex endovascular intervention problems that are otherwise hard to address using existing models.
在过去的几十年中,血管内介入治疗的角色迅速发展。虽然动物模型长期以来一直是该领域发展的主要支柱,但随着工程技术的最新进展,体外模型的使用也越来越广泛。在这里,我们回顾了主要包括生物打印和微制造的策略,这些策略允许制造仿生血管模型,这可能有助于补充传统的动物模型,以便方便地研究血管内介入治疗。除了正常的血管外,那些处于疾病状态的血管,如血栓,也可以通过整合模拟血管疾病微环境的线索来建模。这些用于开发仿生体外血管结构的新型工程策略可能会为研究复杂的血管内介入治疗问题提供非传统的方法,而这些问题使用现有模型是难以解决的。