自愈水凝胶
材料科学
共价键
韧性
超分子化学
网络共价键合
组织工程
超分子聚合物
纳米技术
复合材料
高分子化学
生物医学工程
化学
有机化学
分子
医学
作者
Shahzad Hafeez,Monize Caiado Decarli,Ana A. Aldana,Mahsa Ebrahimi,Floor A.A. Ruiter,Hans Duimel,Clemens van Blitterswijk,Louis M. Pitet,Lorenzo Moroni,Matthew B. Baker
标识
DOI:10.1002/adma.202301242
摘要
Abstract Synthetic hydrogels often lack the load‐bearing capacity and mechanical properties of native biopolymers found in tissue, such as cartilage. In natural tissues, toughness is often imparted via the combination of fibrous noncovalent self‐assembly with key covalent bond formation. This controlled combination of supramolecular and covalent interactions remains difficult to engineer, yet can provide a clear strategy for advanced biomaterials. Here, a synthetic supramolecular/covalent strategy is investigated for creating a tough hydrogel that embodies the hierarchical fibrous architecture of the extracellular matrix (ECM). A benzene‐1,3,5‐tricarboxamide (BTA) hydrogelator is developed with synthetically addressable norbornene handles that self‐assembles to form a and viscoelastic hydrogel. Inspired by collagen's covalent cross‐linking of fibrils, the mechanical properties are reinforced by covalent intra‐ and interfiber cross‐links. At over 90% water, the hydrogels withstand up to 550% tensile strain, 90% compressive strain, and dissipated energy with recoverable hysteresis. The hydrogels are shear‐thinning, can be 3D bioprinted with good shape fidelity, and can be toughened via covalent cross‐linking. These materials enable the bioprinting of human mesenchymal stromal cell (hMSC) spheroids and subsequent differentiation into chondrogenic tissue. Collectively, these findings highlight the power of covalent reinforcement of supramolecular fibers, offering a strategy for the bottom‐up design of dynamic, yet tough, hydrogels and bioinks.
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