Pan Chen, Gao Qiqi, Kim Byoung-Soo, Han Yafeng, Gao Ge
Institute of Engineering Medicine, Beijing Institute of Technology, Beijing 100081, China.
School of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, China.
Micromachines (Basel). 2022 Feb 19;13(2):326. doi: 10.3390/mi13020326.
As the leading causes of global death, cardiovascular diseases are generally initiated by artery-related disorders such as atherosclerosis, thrombosis, and aneurysm. Although clinical treatments have been developed to rescue patients suffering from artery-related disorders, the underlying pathologies of these arterial abnormalities are not fully understood. Biofabrication techniques pave the way to constructing diseased artery in vitro models using human vascular cells, biomaterials, and biomolecules, which are capable of recapitulating arterial pathophysiology with superior performance compared with conventional planar cell culture and experimental animal models. This review discusses the critical elements in the arterial microenvironment which are important considerations for recreating biomimetic human arteries with the desired disorders in vitro. Afterward, conventionally biofabricated platforms for the investigation of arterial diseases are summarized, along with their merits and shortcomings, followed by a comprehensive review of advanced biofabrication techniques and the progress of their applications in establishing diseased artery models.
作为全球主要死因,心血管疾病通常由动脉相关疾病引发,如动脉粥样硬化、血栓形成和动脉瘤。尽管已经开发出临床治疗方法来救治患有动脉相关疾病的患者,但这些动脉异常的潜在病理机制尚未完全明确。生物制造技术为使用人类血管细胞、生物材料和生物分子构建体外病变动脉模型铺平了道路,与传统的平面细胞培养和实验动物模型相比,这些模型能够以卓越的性能重现动脉病理生理学。本文综述了动脉微环境中的关键要素,这些要素是在体外重建具有所需疾病的仿生人类动脉时的重要考量因素。随后,总结了用于研究动脉疾病的传统生物制造平台及其优缺点,接着全面回顾了先进的生物制造技术及其在建立病变动脉模型中的应用进展。