Related Experiment Video
Updated: May 11, 2025

Engineering 3D Cellularized Collagen Gels for Vascular Tissue Regeneration
Published on: June 16, 2015
3D tubular constructs based on natural polysaccharides and recombinant polypeptide synergistic blends as potential
L C Rodrigues1, J M Gomes1, D Soares da Costa1
13B's Research Group, I3Bs - Research Institute on Biomaterials, Biodegradables and Biomimetics, University of Minho, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine, AvePark, Parque de Ciência e Tecnologia, Zona Industrial da Gandra, 4805-017 Barco, Guimarães, Portugal; ICVS/3B's-PT Government Associate Laboratory, Braga/Guimarães, Portugal.
Abstract:
The development of versatile tubular structures is critical for tissue engineering (TE) applications where vascularization is necessary. This study investigates the fabrication of tubular shaped biomaterials focused on chitosan (CHT) combined with alginate (ALG) and acemannan (ACE), known for their synergistic properties, including physical stability, antibacterial activity, and healing promotion. Translating this CHT/ACE/ALG blend into 3D tubular architectures via the freeze-drying technology resulted in flexible tubes with dimensional stability, and well-defined hollow interiors. Testing these tubes for their water uptake capacity and stability indicated a substantial water absorption (about 20-fold of their dry mass), and they maintained structural integrity under physiological conditions over seven days. Structural analyses using SEM and Micro-CT revealed uniform morphology and porosity, crucial for nutrient and oxygen diffusion. Elastin-like recombinamers (ELRs) containing the QK peptide - a peptide sequence that mimics the vascular endothelial growth factor (VEGF) - were incorporated into the tubular structures, to enhance the bioactivity and the mechanical behavior of the constructs. This modification led to a reduction in porosity but without affecting endothelial cells viability, with pore size ≥100 microm was maintained. The sustained release of bioactive compounds, including ACE and ELRs, was shown to improve endothelial cells viability. Our approach thus opens new possibilities for the design of tubular structures with customizable length, diameter, stability, and bioactivity, particularly in cardiovascular applications.
More Related Videos
08:43Recombinant Collagen I Peptide Microcarriers for Cell Expansion and Their Potential Use As Cell Delivery System in a Bioreactor Model
Published on: February 7, 2018
08:16Fabrication of Custom Agarose Wells for Cell Seeding and Tissue Ring Self-assembly Using 3D-Printed Molds
Published on: April 2, 2018