Instructive Biomaterials and Additive Manufacturing Laboratory, Otto H. York Chemical, Biological and Pharmaceutical Engineering, Newark College of Engineering, New Jersey Institute of Technology, University Heights, 138 York Center, Newark, NJ, 07102, USA.
Adv Healthc Mater. 2018 Feb;7(4). doi: 10.1002/adhm.201701165. Epub 2018 Jan 18.
There is a growing interest in engineering hydrogels for 3D tissue and disease models. The major motivation is to better mimic the physiological microenvironment of the disease and human condition. 3D tissue models derived from patients' own cells can potentially revolutionize the way treatment and diagnostic alternatives are developed. This requires development of tissue mimetic hydrogels with user defined and tunable properties. In this review article, a recent summary of 3D hydrogel platforms for in vitro tissue and disease modeling is given. Hydrogel design considerations and available hydrogel systems are summarized, followed by the types of currently available hydrogel models, such as bulk hydrogels, porous scaffolds, fibrous scaffolds, hydrogel microspheres, hydrogel sandwich systems, microwells, and 3D bioprinted constructs. Although hydrogels are utilized for a wide range of tissue models, this article focuses on liver and cancer models. This article also provides a detailed section on current challenges and future perspectives of hydrogel-based tissue models.
人们对用于 3D 组织和疾病模型的水凝胶工程越来越感兴趣。主要动机是更好地模拟疾病和人体状况的生理微环境。源自患者自身细胞的 3D 组织模型有可能彻底改变治疗和诊断方法的开发方式。这需要开发具有用户定义和可调特性的组织模拟水凝胶。在这篇综述文章中,给出了用于体外组织和疾病建模的 3D 水凝胶平台的最新总结。总结了水凝胶设计注意事项和现有水凝胶系统,然后介绍了目前可用的水凝胶模型的类型,例如块状水凝胶、多孔支架、纤维状支架、水凝胶微球、水凝胶夹层系统、微井和 3D 生物打印构建体。尽管水凝胶被广泛用于各种组织模型,但本文重点介绍了肝脏和癌症模型。本文还详细介绍了基于水凝胶的组织模型的当前挑战和未来展望。