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May 6, 2026International Journal of Molecular Sciences1 citationsOpen Access

3D Bioprinting of Blood Vessel Model for Improving Wound Healing

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FIFlorin IORDACHEMDMadalina DulceanuAHAlina Maria Holban

Key Points

  • To develop a model of blood vessels for wound healing using 3D bioprinting techniques.
  • Used collagen and hyaluronic acid hydrogels with stem cells for bioprinting vascular models.
  • Employed CAD software for designing the vascular structure.
  • Characterized constructs using various techniques including SEM and immunohistochemistry.
  • Constructs demonstrated biocompatibility and structural accuracy.
  • Showing enhanced cell viability and VEGF production, indicating potential for effective wound healing.

Abstract

Hydrogel-based stem cell therapy uses different stem cells and bioactive molecules for wound healing in the treatment of diabetes and chronic burn wounds by accelerating angiogenesis, collagen deposition, and inhibition of inflammatory responses. Artificial vessels have already been used for patients with cardiovascular diseases, but most of them are polymeric, which can cause thrombosis and restenosis. 3D bioprinting combines cells, growth factors, and biomaterials to create a setting in which cells grow and differentiate into native tissue-like structures. The current study aimed to create a model of blood vessels using collagen and hyaluronic acid hydrogel combined with endothelial and muscle progenitor cells derived from amniotic mesenchymal stem cells using 3D bioprinting. A computer-aided design (CAD) software was employed to create the 3D models of a blood vessel model and printed using a 3D bioprinter with two printheads: one with bioink encapsulating endothelial progenitor cells and the second with bioink encapsulating smooth muscle progenitor cells. The blood vessel constructs were characterized morphologically and structurally by Fourier Transform Infrared (FTIR) Spectroscopy, thermogravimetric analysis (TGA), Scanning Electron Microscopy (SEM), immunohistochemistry, water uptake, and enzymatic degradation. Viability, proliferation, oxidative stress, vascular endothelial growth factor (VEGF) and nitric oxide (NO) production were assessed to demonstrate the cytocompatibility of the blood vessel constructs. Our results showed that collagen–hyaluronic acid hydrogels embedded with stem cells can be used for vascular constructs, meeting the desired requirements of biocompatibility and accuracy in reproducing the model created in the CAD software v1.0.

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Cite This Study

IORDACHE et al. (2026) studied this question.

synapsesocial.com/papers/69fa8eac04f884e66b530f2dhttps://doi.org/10.3390/ijms27094019
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Therapeutic Potential of Amniotic Fluid Stem Cells2013 · 20 citations
  2. 2Senescence‐induced immunophenotype, gene expression and electrophysiology changes in human amniocytes2019 · 14 citations
  3. 3Molecular and Phenotypic Characterization of Human Amniotic Fluid-Derived Cells: A Morphological and Proteomic Approach2015 · 35 citations
  4. 4Wound Healing Promotion by Hyaluronic Acid: Effect of Molecular Weight on Gene Expression and In Vivo Wound Closure2021 · 153 citations
  5. 5Methods for the Determination of Plasma or Tissue Glutathione Levels2012 · 153 citations