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正交点击反应能够在无需多臂前体的情况下合成模拟细胞外基质的聚乙二醇水凝胶。

Orthogonal click reactions enable the synthesis of ECM-mimetic PEG hydrogels without multi-arm precursors.

作者信息

Jivan Faraz, Fabela Natalia, Davis Zachary, Alge Daniel L

机构信息

Texas A&M University, Department of Biomedical Engineering, 5045 Emerging Technologies Building, 3120 TAMU, College Station, TX, 77843, United States.

North Carolina State University, Department of Materials Science and Engineering, 911 Partners Way, Raleigh, NC 27606, United States.

出版信息

J Mater Chem B. 2018 Aug 14;6(30):4929-4936. doi: 10.1039/C8TB01399C. Epub 2018 Jul 9.

Abstract

Click chemistry reactions have become an important tool for synthesizing user-defined hydrogels consisting of poly(ethylene glycol) (PEG) and bioactive peptides for tissue engineering. However, because click crosslinking proceeds via a step-growth mechanism, multi-arm telechelic precursors are required, which has some disadvantages. Here, we report for the first time that this requirement can be circumvented to create PEG-peptide hydrogels solely from linear precursors through the use of two orthogonal click reactions, the thiol-maleimide Michael addition and thiol-norbornene click reaction. The rapid kinetics of both click reactions allowed for quick formation of norbornene-functionalized PEG-peptide block copolymers via Michael addition, which were subsequently photocrosslinked into hydrogels with a dithiol linker. Characterization and testing demonstrated that the hydrogels have highly tunable physicochemical properties and excellent cytocompatiiblity. In addition, stoichiometric control over the crosslinking reaction can be leveraged to leave unreacted norbornene groups in the hydrogel for subsequent hydrogel functionalization via bioorthogonal inverse-electron demand Diels-Alder click reactions with -tetrazines. After selectively capping norbornene groups in a user-defined region with cysteine, this feature was leveraged for protein patterning. Collectively, these results demonstrate that our novel chemical strategy is a simple and versatile approach to the development of hydrogels for tissue engineering that could be useful for a variety of applications.

摘要

点击化学反应已成为合成由聚乙二醇(PEG)和生物活性肽组成的用于组织工程的用户定制水凝胶的重要工具。然而,由于点击交联是通过逐步增长机制进行的,因此需要多臂遥爪前体,这存在一些缺点。在此,我们首次报道可以通过使用两种正交点击反应,即硫醇-马来酰亚胺迈克尔加成反应和硫醇-降冰片烯点击反应,绕过这一要求,仅从线性前体创建PEG-肽水凝胶。两种点击反应的快速动力学使得通过迈克尔加成反应快速形成降冰片烯功能化的PEG-肽嵌段共聚物,随后用二硫醇连接剂将其光交联成水凝胶。表征和测试表明,这些水凝胶具有高度可调节的物理化学性质和优异的细胞相容性。此外,可以利用对交联反应的化学计量控制,使水凝胶中留下未反应的降冰片烯基团,以便随后通过与四嗪的生物正交逆电子需求狄尔斯-阿尔德点击反应对水凝胶进行功能化。在用半胱氨酸在用户定义区域选择性封端降冰片烯基团后,利用这一特性进行蛋白质图案化。总的来说,这些结果表明,我们的新型化学策略是一种简单且通用的方法,可用于开发用于组织工程的水凝胶,可能适用于各种应用。

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