Nie Lei, Sun Yanfang, Okoro Oseweuba Valentine, Deng Yaling, Jiang Guohua, Shavandi Amin
College of Life Sciences, Xinyang Normal University (XYNU), Xinyang 464000, P. R. China.
College of Life Sciences and Medicine, Zhejiang Sci-Tech University, Hangzhou, Zhejiang, P. R. China.
Mater Horiz. 2023 Jul 31;10(8):2727-2763. doi: 10.1039/d3mh00516j.
Bioinks are employed in the fabrication of 3D scaffolds containing cells and macromolecules that can be applied in regenerative medicine. The use of such bioinks facilitates the controlled introduction and localization of macromolecules, bioactives and cells for the biofabrication of living tissues. To enable the successful preparation of the bioinks, strategies involving the use of so-called cross linkers, which may be ionic, chemical, photo- based, are employed. Some of these strategies such as the use of glutaraldehyde as a crosslinker or harsh crosslinking conditions may however compromise the cytocompatibility of the bioink. To circumvent this challenge, the employment of click chemistry technology has been proposed. This is because, click chemistry can enable the preparation of well-tuned bioinks in the absence of problematic cross-linkers, while ensuring that favorable gelation rate, degradation rate, and cell viability properties of the bioinks are not compromised. Indeed, the bio-orthogonal nature of click chemistry has been suggested to enhance the maintenance of high cell viability in scaffolds. In this regard, the current study explored the potential of using different click chemistries in specific bioprinting techniques. Major bioinks produced using click chemistry were also identified, with existing challenges and future trends discussed. It is anticipated that this review will be invaluable to the tissue engineering field by providing an important resource for bioengineers and a basis of future decisions regarding the selection of the preferred click chemistry for specific bioink functionalities.
生物墨水被用于制造包含细胞和大分子的3D支架,这些支架可应用于再生医学。使用此类生物墨水有助于在生物制造活组织时对大分子、生物活性物质和细胞进行可控的引入和定位。为了成功制备生物墨水,人们采用了一些策略,包括使用所谓的交联剂,这些交联剂可以是离子型、化学型、光基型的。然而,其中一些策略,如使用戊二醛作为交联剂或苛刻的交联条件,可能会损害生物墨水的细胞相容性。为了应对这一挑战,有人提出采用点击化学技术。这是因为,点击化学能够在不存在有问题的交联剂的情况下制备出经过良好调整的生物墨水,同时确保生物墨水的良好凝胶化速率、降解速率和细胞活力特性不受影响。事实上,有人认为点击化学的生物正交性质有助于提高支架中细胞的高活力维持率。在这方面,当前的研究探索了在特定生物打印技术中使用不同点击化学的潜力。还确定了使用点击化学产生的主要生物墨水,并讨论了现有挑战和未来趋势。预计这篇综述将为组织工程领域提供宝贵资源,为生物工程师提供重要参考,并为未来选择特定生物墨水功能的首选点击化学提供决策依据。