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◆ Chemistry of Materials2025-12-11· Viscoelasticity

Expanding the Versatility of Dynamic Covalent Hydrogels with Static Covalent Spot-Welding

Michelle S. Huang, Renato S. Navarro, Lucia G. Brunel, Narelli de Paiva Narciso, Giselle Aviles Rodriguez, Neil J. Baugh, Julien G. Roth, Sarah M. Hull, Kelsea M. Hubka, Sarah C. Heilshorn

原始摘要(英文原文)· Original abstract
Hydrogels cross-linked through dynamic covalent chemistry (DCC) can mimic the viscoelastic properties of native biological tissues; however, these materials often suffer from rapid erosion, greatly limiting their application in biological studies. To address this challenge, we developed a DCC hydrogel with enhanced stability by sparsely distributing static covalent bonds, termed “spot-welds,” throughout the network. These spot-welds served as anchor points to prevent polymer erosion and significantly improved gel stability without compromising viscoelasticity. Specifically, our single-network system (termed HELP) consisted of two recombinant biopolymers, hyaluronic acid (HA) and an engineered elastin-like protein (ELP), each modified to cross-link through both dynamic hydrazone bonds and static strain-promoted azide–alkyne cycloaddition (SPAAC) bonds. Gels with and without sparsely distributed spot-welds had similar stiffness ( G ′ ∼ 800 Pa), stress relaxation rates (τ 1/2 ∼ 6000 s), and shear-thinning behavior, resulting in gels that were viscoelastic and extrudable through a 3D printing syringe. Importantly, the spot-welds significantly improved gel stability, with DCC-only gels suffering complete erosion by day 4, while spot-welded gels remained stable for at least 14 days. This combination of enhanced gel stability with viscoelastic mechanics enabled the 3D culture and maturation of human stem cell-derived cardiomyocytes. While elastic control gels resulted in loss of cardiomyocyte phenotype, the spot-welded viscoelastic gels supported cardiomyocyte spreading, spontaneous beating, and expression of α-actinin and troponin T. In summary, sparsely distributing static cross-links on each biopolymer within a dynamic covalent network results in an injectable and printable single-network hydrogel with viscoelastic mechanics and significantly enhanced stability, supporting 3D cardiomyocyte culture and maturation.
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