House Andrew, Atalla Iren, Lee Eun Jung, Guvendiren Murat
Instructive Biomaterials and Additive Manufacturing Laboratory, Otto H. York Chemical and Materials Engineering, 138 York Center, University Heights, Newark, NJ 07102, USA.
Adv Nanobiomed Res. 2021 Jan;1(1). doi: 10.1002/anbr.202000022. Epub 2020 Oct 16.
Heart disease is one of the leading causes of death in the world. There is a growing demand for cardiac models that can recapitulate the complex physiology of the cardiac tissue. These cardiac models can provide a platform to better understand the underlying mechanisms of cardiac development and disease and aid in developing novel treatment alternatives and platforms towards personalized medicine. In this review, a summary of engineered cardiac platforms is presented. Basic design considerations for replicating the heart's microenvironment are discussed considering the anatomy of the heart. This is followed by a detailed summary of the currently available biomaterial platforms for modeling the heart tissue . These models include 2D surface modified structures, 3D molded structures, porous scaffolds, electrospun scaffolds, bioprinted structures, and heart-on-a-chip devices. The challenges faced by current models and the future directions of cardiac models are also discussed. Engineered tissue models utilizing patients' own cells could potentially revolutionize the way we develop treatment and diagnostic alternatives.
心脏病是全球主要死因之一。对能够重现心脏组织复杂生理学的心脏模型的需求日益增长。这些心脏模型可以提供一个平台,以更好地理解心脏发育和疾病的潜在机制,并有助于开发新的治疗方案和迈向个性化医疗的平台。在这篇综述中,对工程化心脏平台进行了总结。考虑到心脏的解剖结构,讨论了复制心脏微环境的基本设计考量。随后详细总结了目前可用于模拟心脏组织的生物材料平台。这些模型包括二维表面改性结构、三维模制结构、多孔支架、电纺支架、生物打印结构和芯片上的心脏装置。还讨论了当前模型面临的挑战以及心脏模型的未来发展方向。利用患者自身细胞构建的工程化组织模型可能会彻底改变我们开发治疗和诊断方案的方式。