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April 24, 2026Gels2 citationsOpen Access

Fibrin Gel as a Versatile Biomaterial Platform in the Biomedical Landscape: Chemical, Physical, and Biological Insights

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SCSabrina CariaJPJessica PetitiGRGerardina Ruocco

Key Points

  • This research aims to develop a reproducible method for synthesizing fibrin hydrogels with predictable structural properties.
  • Synthesis of pure fibrin hydrogels using specific concentrations of fibrinogen and thrombin.
  • Assessment of mechanical and morphological characteristics.
  • Analysis of relationships between reagent concentrations and structural integrity.
  • Identified optimal formulation at 2.25 mg/mL fibrinogen and 1.375 U/mL thrombin.
  • Achieved balanced structural integrity and high cytocompatibility.
  • Ensured reproducibility and defined architecture without additional chemical cross-linkers.

Abstract

Fibrin gel, a protein-based polymer naturally generated during coagulation, has garnered attention in the biomedical field for applications such as fibrin glue, due to its specific physical and biological properties. Despite it, low mechanical strength and rapid degradation limited its utilization for biomedical applications. This study presents a reproducible protocol for the synthesis of pure fibrin hydrogels, aimed at achieving predictable structural properties through the precise calibration of fibrinogen and thrombin concentrations. By examining the mechanical and morphological characteristics, as well as the relationship between reagent concentrations and structural integrity, this research assesses impacts on swelling behavior, water absorption, and overall stability. Through a comprehensive analytical approach, we identified an optimal formulation, specifically 2.25 mg/mL fibrinogen and 1.375 U/mL thrombin, that effectively balances structural integrity with high cytocompatibility. The results demonstrate that this calibrated approach ensures high procedural reproducibility and a well-defined hydrogel architecture without the need for exogenous chemical cross-linkers. This work provides a robust methodological framework to overcome the common lack of reproducibility in fibrin-based hydrogel studies, positioning these materials as highly reliable candidates for advanced 3D in vitro models and biomedical applications.

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Cite This Study

Caria et al. (2026) studied this question.

synapsesocial.com/papers/69eb0b8d553a5433e34b5411https://doi.org/10.3390/gels12050351
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