ArticleACS applied bio materials2024
Macroporous PEG-Alginate Hybrid Double-Network Cryogels with Tunable Degradation Rates Prepared via Radical-Free Cross-Linking for Cartilage Tissue Engineering.
Article in ACS applied bio materials, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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Who cites it
11 citing papers in PubMed.
- Fabrication and Performance Evaluation of Multi-Stimuli-Responsive Hydrogels Constructed from Hyperbranched Skeletons.Gels (Basel, Switzerland) · 2026Article
- Shape-Memory Injectable Cryogels: From Minimally Invasive Delivery to Multifunctional Tissue Regeneration.Macromolecular bioscience · 2026Review
- Cryogel-based therapeutic platforms for disease modification in osteoarthritis.npj biomedical innovations · 2026Review
- Ice Templated PEG-Alginate Double-Network Cryogels with Tunable Mechanics and Degradation for Soft Tissue Engineering.Gels (Basel, Switzerland) · 2026Article
- Macroporous Alginate-PEG Hybrid Double Network Cryogels: Tuning Mechanics, Porosity, and Long-Term Growth Factor Release via Polymer Concentration, Ice Nucleation, and Sulfation.ACS applied bio materials · 2026Article
- 3DACS biomaterials science & engineering · 2026Review
- Advancing Bioprinting Technology Utilizing Portable Bioprinters: From Various Device Designs to Dental Applications.Annals of biomedical engineering · 2025Review
- Albumin-Based Cryogels as Floating Platforms for Gastroretentive Drug Delivery Applications.ACS omega · 2025Article
- Properties and Characterization of Cryogels: Structural, Mechanical, and Functional Insights.ACS omega · 2025Review
- Indenting at the Microscale: Guidelines for Robust Mechanical Characterization of Alginate Microgels.ACS applied materials & interfaces · 2025Article
- Physically Cross-Linked PVA Hydrogels as Potential Wound Dressings: How Freezing Conditions and Formulation Composition Define Cryogel Structure and Performance.Pharmaceutics · 2024Article
Corrections and comments
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Authors and funding
4 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Trauma or repeated damage to joints can result in focal cartilage defects, significantly elevating the risk of osteoarthritis. Damaged cartilage has an inherently limited self-healing capacity and remains an urgent unmet clinical need. Consequently, there is growing interest in biodegradable hydrogels as potential scaffolds for the repair or reconstruction of cartilage defects. Here, we developed a biodegradable and macroporous hybrid double-network (DN) cryogel by combining two independently cross-linked networks of multiarm polyethylene glycol (PEG) acrylate and alginate.Hybrid DN cryogels are formed using highly biocompatible click reactions for the PEG network and ionic bonding for the alginate network. By judicious selection of various structurally similar cross-linkers to form the PEG network, we can generate hybrid DN cryogels with customizable degradation kinetics. The resulting PEG-alginate hybrid DN cryogels have an interconnected macroporous structure, high mechanical strength, and rapid swelling kinetics. The interconnected macropores in the cryogels support efficient mesenchymal stem cell infiltration at a high density. Finally, we demonstrate that PEG-alginate hybrid DN cryogels allow sustained release of chondrogenic growth factors and support chondrogenic differentiation of mouse mesenchymal stem cells. This study provides a novel method to generate macroporous hybrid DN cryogels with customizable degradation rates and a potential scaffold for cartilage tissue engineering.
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