School of Materials Science and Engineering, University of New South Wales, Sydney, 2052, Australia.
Department of Orthopedics, University Medical Center Utrecht, Utrecht, 3584CX, The Netherlands.
Macromol Biosci. 2024 May;24(5):e2300457. doi: 10.1002/mabi.202300457. Epub 2023 Dec 20.
Cell encapsulation within three-dimensional hydrogels is a promising approach to mimic tissues. However, true biomimicry of the intricate microenvironment, biophysical and biochemical gradients, and the macroscale hierarchical spatial organizations of native tissues is an unmet challenge within tissue engineering. This review provides an overview of the macromolecular chemistries that have been applied toward the design of cell-friendly hydrogels, as well as their application toward controlling biophysical and biochemical bulk and gradient properties of the microenvironment. Furthermore, biofabrication technologies provide the opportunity to simultaneously replicate macroscale features of native tissues. Biofabrication strategies are reviewed in detail with a particular focus on the compatibility of these strategies with the current macromolecular toolkit described for hydrogel design and the challenges associated with their clinical translation. This review identifies that the convergence of the ever-expanding macromolecular toolkit and technological advancements within the field of biofabrication, along with an improved biological understanding, represents a promising strategy toward the successful tissue regeneration.
细胞在三维水凝胶中的包封是模拟组织的一种很有前途的方法。然而,在组织工程中,真正模拟复杂的微观环境、生物物理和生化梯度以及天然组织的宏观层次空间组织仍然是一个未满足的挑战。本综述概述了用于设计细胞友好型水凝胶的高分子化学,并介绍了它们在控制微环境的生物物理和生化整体及梯度性质方面的应用。此外,生物制造技术为同时复制天然组织的宏观特征提供了机会。本文详细回顾了生物制造策略,特别关注这些策略与当前用于水凝胶设计的高分子工具包的兼容性,以及与临床转化相关的挑战。本综述认为,不断扩展的高分子工具包与生物制造领域内的技术进步的融合,以及对生物学的深入理解,代表了成功组织再生的一种很有前途的策略。