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明胶的双重功能化用于正交和动态水凝胶交联。

Dual Functionalization of Gelatin for Orthogonal and Dynamic Hydrogel Cross-Linking.

机构信息

Department of Biomedical Engineering, Purdue School of Engineering & Technology, Indiana University-Purdue University Indianapolis, Indianapolis, Indiana 46202, United States.

Weldon School of Biomedical Engineering, Purdue University, West Lafayette, Indiana 47907, United States.

出版信息

ACS Biomater Sci Eng. 2021 Sep 13;7(9):4196-4208. doi: 10.1021/acsbiomaterials.1c00709. Epub 2021 Aug 9.

Abstract

Gelatin-based hydrogels are widely used in biomedical fields because of their abundance of bioactive motifs that support cell adhesion and matrix remodeling. Although inherently bioactive, unmodified gelatin exhibits temperature-dependent rheology and solubilizes at body temperature, making it unstable for three-dimensional (3D) cell culture. Therefore, the addition of chemically reactive motifs is required to render gelatin-based hydrogels with highly controllable cross-linking kinetics and tunable mechanical properties that are critical for 3D cell culture. This article provides a series of methods toward establishing orthogonally cross-linked gelatin-based hydrogels for dynamic 3D cell culture. In particular, we prepared dually functionalized gelatin macromers amenable for sequential, orthogonal covalent cross-linking. Central to this material platform is the synthesis of norbornene-functionalized gelatin (GelNB), which forms covalently cross-linked hydrogels via orthogonal thiol-norbornene click cross-linking. Using GelNB as the starting material, we further detail the methods for synthesizing gelatin macromers susceptible to hydroxyphenylacetic acid (HPA) dimerization (i.e., GelNB-HPA) and hydrazone bonding (i.e., GelNB-CH) for on-demand matrix stiffening. Finally, we outline the protocol for synthesizing a gelatin macromer capable of adjusting hydrogel stress relaxation via boronate ester bonding (i.e., GelNB-BA). The combination of these orthogonal chemistries affords a wide range of gelatin-based hydrogels as biomimetic matrices in tissue engineering and regenerative medicine applications.

摘要

明胶基水凝胶由于其丰富的生物活性基序而被广泛应用于生物医学领域,这些基序支持细胞黏附和基质重塑。尽管明胶本身具有生物活性,但未经修饰的明胶表现出温度依赖性流变学特性,并在体温下溶解,使其在三维(3D)细胞培养中不稳定。因此,需要添加具有化学反应性的基序,以使明胶基水凝胶具有高度可控的交联动力学和可调节的机械性能,这对于 3D 细胞培养至关重要。本文提供了一系列建立用于动态 3D 细胞培养的正交交联明胶基水凝胶的方法。特别是,我们制备了双重官能化的明胶大分子单体,这些单体可用于顺序、正交共价交联。该材料平台的核心是合成降冰片烯功能化明胶(GelNB),它通过正交硫醇-降冰片烯点击交联形成共价交联水凝胶。我们以 GelNB 为起始材料,进一步详细介绍了合成易受对羟基苯乙酸(HPA)二聚化(即 GelNB-HPA)和腙键合(即 GelNB-CH)影响的明胶大分子单体的方法,用于按需基质增韧。最后,我们概述了合成能够通过硼酸酯键合调节水凝胶应力松弛的明胶大分子单体的方案(即 GelNB-BA)。这些正交化学的组合提供了广泛的明胶基水凝胶,可作为组织工程和再生医学应用中的仿生基质。

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