Karami Peyman, Nasrollahzadeh Naser, Wyss Céline, O'Sullivan Aine, Broome Martin, Procter Philip, Bourban Pierre-Etienne, Moser Christophe, Pioletti Dominique P
Laboratory of Biomechanical Orthopedics, EPFL, Lausanne, 1015, Switzerland.
Laboratory for Processing of Advanced Composites, EPFL, Lausanne, 1015, Switzerland.
Macromol Rapid Commun. 2021 May;42(10):e2000660. doi: 10.1002/marc.202000660. Epub 2021 Apr 8.
Attaching hydrogels to soft internal tissues is crucial for the development of various biomedical devices. Tough sticky hydrogel patches present high adhesion, yet with lack of injectability and the need for treatment of contacting surface. On the contrary, injectable and photo-curable hydrogels are highly attractive owing to their ease of use, flexibility of filling any shape, and their minimally invasive character, compared to their conventional preformed counterparts. Despite recent advances in material developments, a hydrogel that exhibits both proper injectability and sufficient intrinsic adhesion is yet to be demonstrated. Herein, a paradigm shift is proposed toward the design of intrinsically adhesive networks for injectable and photo-curable hydrogels. The bioinspired design strategy not only provides strong adhesive contact, but also results in a wide window of physicochemical properties. The adhesive networks are based on a family of polymeric backbones where chains are modified to be intrinsically adhesive to host tissue and simultaneously form a hydrogel network via a hybrid cross-linking mechanism. With this strategy, adhesion is achieved through a controlled synergy between the interfacial chemistry and bulk mechanical properties. The functionalities of the bioadhesives are demonstrated for various applications, such as tissue adhesives, surgical sealants, or injectable scaffolds.
将水凝胶附着于柔软的内部组织对于各种生物医学设备的开发至关重要。坚韧的粘性水凝胶贴片具有高粘附性,但缺乏可注射性且需要处理接触表面。相反,可注射且光固化的水凝胶因其使用方便、能填充任何形状的灵活性以及与传统预制同类产品相比的微创特性而极具吸引力。尽管材料开发取得了最新进展,但兼具适当可注射性和足够固有粘附力的水凝胶尚未得到证实。在此,我们提出了一种范式转变,即设计用于可注射且光固化水凝胶的固有粘附网络。这种受生物启发的设计策略不仅提供了强大的粘附接触,还产生了广泛的物理化学性质窗口。粘附网络基于一类聚合物主链,其中链被修饰为对宿主组织具有固有粘附性,并同时通过混合交联机制形成水凝胶网络。通过这种策略,通过界面化学和本体机械性能之间的可控协同作用实现了粘附。生物粘合剂的功能在各种应用中得到了证明,如组织粘合剂、手术密封剂或可注射支架。