Department of Chemistry, McGill University, 801 Sherbrooke Street West, Montreal, Quebec H3A 0B8, Canada.
Department of Chemical Engineering, McGill University, 3610 Rue University Montreal, Québec H3A 0C5, Canada.
ACS Appl Mater Interfaces. 2023 Jun 21;15(24):29004-29011. doi: 10.1021/acsami.3c06013. Epub 2023 Jun 8.
Taking advantage of their thixotropic behavior, microporosity, and modular properties, granular hydrogels formed from jammed hydrogel microparticles have emerged as an exciting class of soft, injectable materials useful for numerous applications, ranging from the production of biomedical scaffolds for tissue repair to the therapeutic delivery of drugs and cells. Recently, the annealing of hydrogel microparticles in situ to yield a porous bulk scaffold has shown numerous benefits in regenerative medicine, including tissue-repair applications. Current annealing techniques, however, mainly rely either on covalent connections, which produce static scaffolds, or transient supramolecular interactions, which produce dynamic but mechanically weak hydrogels. To address these limitations, we developed microgels functionalized with peptides inspired by the histidine-rich cross-linking domains of marine mussel byssus proteins. Functionalized microgels can reversibly aggregate in situ via metal coordination cross-linking to form microporous, self-healing, and resilient scaffolds at physiological conditions by inclusion of minimal amounts of zinc ions at basic pH. Aggregated granular hydrogels can subsequently be dissociated in the presence of a metal chelator or under acidic conditions. Based on the demonstrated cytocompatibility of these annealed granular hydrogel scaffolds, we believe that these materials could be developed toward applications in regenerative medicine and tissue engineering.
利用其触变行为、微孔性和模块特性,由凝胶化水凝胶微球形成的颗粒状水凝胶已成为一类令人兴奋的软质可注射材料,可用于多种应用,从用于组织修复的生物医学支架的生产到药物和细胞的治疗性递送到。最近,水凝胶微球的原位退火以产生多孔块状支架在再生医学中显示出许多益处,包括组织修复应用。然而,目前的退火技术主要依赖于产生静态支架的共价连接,或产生动态但机械强度弱的水凝胶的瞬时超分子相互作用。为了解决这些限制,我们开发了由贻贝足蛋白中富含组氨酸的交联结构域启发的肽功能化的微凝胶。在生理条件下,通过在碱性 pH 值下包含少量锌离子,功能化的微凝胶可以通过金属配位交联进行原位可逆聚集,形成微孔、自修复和有弹性的支架。聚集的颗粒状水凝胶随后可以在金属螯合剂的存在下或在酸性条件下解离。基于这些退火的颗粒状水凝胶支架的展示出的细胞相容性,我们相信可以将这些材料开发用于再生医学和组织工程应用。