ArticleActa biomaterialia2025
Hydrogels with multiple RGD presentations increase cell adhesion and spreading.
Article in Acta biomaterialia, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 13 papers.
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Who cites it
13 citing papers in PubMed.
- Post-translational modification-regulating biomaterials for regeneration.Bioactive materials · 2026Review
- Lipid network crosslinked hydrogels control material dynamics across multiple length scales through lipid movement.Nature communications · 2026Article
- Gelatin-Based Multifunctional Hydrogels for Sports Injury Repair: Musculoskeletal and Nervous System Perspectives.Gels (Basel, Switzerland) · 2026Review
- 4D morphogenetic tissue engineering via gradient-crosslinked microporous hydrogel scaffolds.Materials today. Bio · 2026Article
- Calcium-enriched mesoporous silica/PLGA scaffolds enhance bone repair in a rabbit femoral condylar defect model.Scientific reports · 2026Article
- Molecular-Scale Tuning of Low-Molecular-Weight Gelators Controls Supramolecular Assembly and Directs Human Mesenchymal Stem Cell Growth.Angewandte Chemie (International ed. in English) · 2026Article
- Programming Hydrogel Mechanics via Sequence-Controlled Polymerization Using Peptide Self-Assembly.Journal of the American Chemical Society · 2026Article
- Recent advances in multimodal foundation model-enabled peptide screening and optimization for smart biomaterials and functional tissue engineering.Frontiers in bioengineering and biotechnology · 2026Review
- Pathology-guided design of injectable hydrogels for precision therapy and cartilage regeneration in osteoarthritis.Regenerative biomaterials · 2026Review
- Nano- and Microscale Chemical and Topographical Patterning of Synthetic Cell Scaffolds: from Hard to Soft Materials.ACS materials Au · 2025Review
- Dynamic Hydrogels in Breast Tumor Models.Gels (Basel, Switzerland) · 2025Review
- Next-Generation Natural Hydrogels in Oral Tissue Engineering.Pharmaceutics · 2025Review
- Fabrication of a low-kink-radius bilayer vascular scaffold incorporating a TPU stent fabricated via melt electrowriting and an electrospun PCL/PU/gelatin layer.Scientific reports · 2025Article
Corrections and comments
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Authors and funding
5 authors.
Funding
Abstract
A key challenge in designing hydrogels for cell culture is replicating the cell-matrix interactions found in tissues. Cells use integrins to bind their local matrix and form adhesions in which integrins dynamically move on the cell membrane while applying significant forces to the local matrix. Identifying the important biomaterial features for these interactions is challenging because it is difficult to independently adjust variables such as matrix stiffness, stress relaxation, the mobility of adhesion ligands, and the ability of these ligands to support cellular forces. In this work, we designed a hydrogel platform consisting of interpenetrating polymer networks of covalently crosslinked poly(ethylene glycol) (PEG) and self-assembled peptide amphiphiles (PA). We can tune the viscoelasticity of the hydrogel by modulating the composition of both networks. Ligand mobility can be adjusted independently of the matrix mechanical properties by attaching the arginine-glycine-aspartic acid (RGD) cell adhesion ligand to either the covalent PEG network, the dynamic PA network, or both networks at once. We find that endothelial cell adhesion formation and spreading is maximized in soft gels in which adhesion ligands are present on both the covalent and non-covalent networks. The dynamic nature of adhesion domains, coupled with their ability to exert substantial forces on the matrix, suggests that having different presentations of RGD ligands which are either mobile or capable of withstanding significant forces is needed to mimic different aspects of complex cell-matrix adhesions. These results will contribute to the design of hydrogels that better recapitulate physiological cell-matrix interactions. STATEMENT OF SIGNIFICANCE: Creating artificial environments that accurately mimic how cells interact with their surrounding matrix in natural tissues remains a fundamental challenge in biomaterials science. This study introduces a dual-network hydrogel platform that independently controls mechanical properties and adhesion ligand mobility by combining stable and dynamic polymer networks. A significant body of work has shown that matrix viscoelasticity and adhesion ligand mobility are important for cell adhesion and spreading. Our work builds on this by showing that endothelial cells function optimally when they can simultaneously engage with both mobile adhesion sites and force-resistant anchoring points, independent of matrix viscoelasticity. These insights will guide the design of more physiologically relevant hydrogels for tissue engineering applications and disease modeling.
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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.