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March 25, 2026Gels1 citationsOpen Access

Formulation and 3D Printing of Collagen/Chitosan Inks: Tailoring the Scaffold Properties

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TCTeresa CarranzaMAMireia AndoneguiRHRaquel Hernáez

Key Points

  • The study aims to develop and characterize collagen/chitosan hydrogels for 3D printing applications in cartilage tissue engineering.
  • Developed collagen/chitosan inks with varying polymer ratios
  • Conducted rheological and physicochemical property analyses
  • Performed in vitro cytocompatibility testing with murine fibroblasts and chondrocytes
  • Quantified sulfated glycosaminoglycan deposition over time
  • 20CHI formulation showed optimal printability and stability
  • Scaffolds maintained solid-like viscoelasticity and shear-thinning behavior
  • In vitro studies confirmed high cell adhesion and proliferation
  • Sustained matrix deposition indicated by increased sulfated glycosaminoglycan production over 28 days

Abstract

The development of inks with suitable rheological, physicochemical, mechanical, and biological properties is crucial for the successful fabrication of functional scaffolds via extrusion-based 3D printing. In this study, collagen/chitosan hydrogels with varying polymer ratios were developed and characterized to evaluate their printability and suitability for cartilage tissue engineering. Rheological analyses revealed that all samples exhibited shear-thinning behavior and solid-like viscoelasticity, with the formulation of an 80:20 COL/CHI ratio (20CHI) demonstrating optimal filament formation and dimensional stability. Physicochemical analyses confirmed the preservation of the collagen triple helix and the formation of hydrogen bonding between chitosan and collagen. 20CHI scaffolds showed swelling capacity and high cohesiveness. In vitro studies confirmed the cytocompatibility of the scaffolds with murine fibroblasts and the ability of the scaffolds to promote adhesion, proliferation, and extracellular matrix production of both chondrocytes and adipogenic mesenchymal stem cells (aMSCs). Quantification of sulfated glycosaminoglycan (sGAG) indicated sustained matrix deposition over 28 days, particularly by chondrocytes. These findings demonstrate that 20CHI hydrogel is a promising candidate for 3D printing of biomimetic scaffolds for cartilage regeneration.

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Cite This Study

Carranza et al. (2026) studied this question.

synapsesocial.com/papers/69c37b81b34aaaeb1a67e0b7https://doi.org/10.3390/gels12030261
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