Mueller Eva, Poulin Isabelle, Bodnaryk William James, Hoare Todd
Department of Chemical Engineering, McMaster University, 1280 Main Street West, Hamilton, Ontario L8S 4L7, Canada.
Biomacromolecules. 2022 Mar 14;23(3):619-640. doi: 10.1021/acs.biomac.1c01105. Epub 2022 Jan 6.
The emergence of 3D bioprinting has allowed a variety of hydrogel-based "bioinks" to be printed in the presence of cells to create precisely defined cell-loaded 3D scaffolds in a single step for advancing tissue engineering and/or regenerative medicine. While existing bioinks based primarily on ionic cross-linking, photo-cross-linking, or thermogelation have significantly advanced the field, they offer technical limitations in terms of the mechanics, degradation rates, and the cell viabilities achievable with the printed scaffolds, particularly in terms of aiming to match the wide range of mechanics and cellular microenvironments. Click chemistry offers an appealing solution to this challenge given that proper selection of the chemistry can enable precise tuning of both the gelation rate and the degradation rate, both key to successful tissue regeneration; simultaneously, the often bio-orthogonal nature of click chemistry is beneficial to maintain high cell viabilities within the scaffolds. However, to date, relatively few examples of 3D-printed click chemistry hydrogels have been reported, mostly due to the technical challenges of controlling mixing during the printing process to generate high-fidelity prints without clogging the printer. This review aims to showcase existing cross-linking modalities, characterize the advantages and disadvantages of different click chemistries reported, highlight current examples of click chemistry hydrogel bioinks, and discuss the design of mixing strategies to enable effective 3D extrusion bioprinting of click hydrogels.
3D生物打印技术的出现使得各种基于水凝胶的“生物墨水”能够在细胞存在的情况下进行打印,从而在一步操作中创建出精确定义的负载细胞的3D支架,以推动组织工程和/或再生医学的发展。虽然现有的主要基于离子交联、光交联或热凝胶化的生物墨水已经极大地推动了该领域的发展,但它们在力学性能、降解速率以及打印支架所能实现的细胞活力方面存在技术局限性,尤其是在旨在匹配广泛的力学性能和细胞微环境方面。点击化学为这一挑战提供了一个有吸引力的解决方案,因为正确选择化学反应能够精确调节凝胶化速率和降解速率,这两者都是成功组织再生的关键;同时,点击化学通常具有生物正交性,有利于在支架内维持较高的细胞活力。然而,迄今为止,3D打印点击化学水凝胶的例子相对较少,这主要是由于在打印过程中控制混合以生成高保真打印且不堵塞打印机存在技术挑战。本综述旨在展示现有的交联方式,描述所报道的不同点击化学的优缺点,突出点击化学水凝胶生物墨水的当前实例,并讨论混合策略的设计,以实现点击水凝胶的有效3D挤出生物打印。