ArticlePolymers2024
Formulation-Property Effects in Novel Injectable and Resilient Natural Polymer-Based Hydrogels for Soft Tissue Regeneration.
Article in Polymers, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed.
- Exosome-functionalized alginate/gelatin composite scaffolds: synergistic enhancement of osteogenic differentiation for bone tissue engineering.Journal of orthopaedic surgery and research · 2026Article
- Soft Tissue Scaffolds in Breast Reconstruction: Evolution from Acellular Dermal Matrices to Synthetic Polymers.Journal of clinical medicine · 2026Review
- Multifunctional implantable hydrogels: Smart platforms at the forefront of biomedical innovation.Materials today. Bio · 2026Review
- Injectable Scaffolds for Adipose Tissue Reconstruction.Gels (Basel, Switzerland) · 2026Review
- Smart Polymer-Derived Injectable Hydrogels: Current Status and Future Perspectives.ACS polymers Au · 2025Review
- Fabrication and Characterization of Electrospun PCL/GelMA Composite Scaffolds for Muscle Tissue Engineering.Tissue engineering and regenerative medicine · 2025Article
- Tuning collagen and collagen-alginate mechanics through extrusion bioprinting process parameters.RSC advances · 2025Article
- Hydrogels in Peri-Implant Regeneration: Strategies for Modulating Tissue Healing.Pharmaceutics · 2025Review
- Applications of Hydrogels in Emergency Therapy.Gels (Basel, Switzerland) · 2025Review
- Gelatin-Based Polymers Can Be Processed to Highly Resilient Biocompatible Porous Hydrogel Scaffolds for Soft Tissue Regeneration Applications.Gels (Basel, Switzerland) · 2024Article
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Authors and funding
4 authors.
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No grant is acknowledged in the PubMed record.
Abstract
The development of injectable hydrogels for soft tissue regeneration has gained significant attention due to their minimally invasive application and ability to conform precisely to the shape of irregular tissue cavities. This study presents a novel injectable porous scaffold based on natural polymers that undergoes in situ crosslinking, forming a highly resilient hydrogel with tailorable mechanical and physical properties to meet the specific demands of soft tissue repair. By adjusting the formulation, we achieved a range of stiffness values that closely mimic the mechanical characteristics of native tissues while maintaining very high resilience (>90%). The effects of gelatin, alginate, and crosslinker concentrations, as well as porosity, on the hydrogel's properties were elucidated. The main results indicated a compression modulus range of 2.7-89 kPa, which fits all soft tissues, and gelation times ranging from 5 to 30 s, which enable the scaffold to be successfully used in various operations. An increase in gelatin and crosslinker concentrations results in a higher modulus and lower gelation time, i.e., a stiffer hydrogel that is created in a shorter time. In vitro cell viability tests on human fibroblasts were performed and indicated high biocompatibility. Our findings demonstrate that these injectable hydrogel scaffolds offer a promising solution for enhancing soft tissue repair and regeneration, providing a customizable and resilient framework that is expected to support tissue integration and healing with minimal surgical intervention.
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