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Design of Perfused PTFE Vessel-Like Constructs for In Vitro Applications.

Manuela EstermannGiovanni SpiaggiaDedy SeptiadiIrini Magdelina DijkhoffBarbara DraslerAlke Petri-FinkBarbara Rother-Rutishauser
Published in: Macromolecular bioscience (2021)
Tissue models mimic the complex 3D structure of human tissues, which allows the study of pathologies and the development of new therapeutic strategies. The introduction of perfusion overcomes the diffusion limitation and enables the formation of larger tissue constructs. Furthermore, it provides the possibility to investigate the effects of hematogenously administered medications. In this study, the applicability of hydrophilic polytetrafluoroethylene (PTFE) membranes as vessel-like constructs for further use in perfused tissue models is evaluated. The presented approach allows the formation of stable and leakproof tubes with a mean diameter of 654.7 µm and a wall thickness of 84.2 µm. A polydimethylsiloxane (PDMS) chip acts as a perfusion bioreactor and provides sterile conditions. As proof of concept, endothelial cells adhere to the tube's wall, express vascular endothelial cadherin (VE-cadherin) between neighboring cells, and resist perfusion at a shear rate of 0.036 N m-2 for 48 h. Furthermore, the endothelial cell layer delays significantly the diffusion of fluorescently labeled molecules into the surrounding collagen matrix and leads to a twofold reduced diffusion velocity. This approach represents a cost-effective alternative to introduce stable vessel-like constructs into tissue models, which allows adapting the surrounding matrix to the tissue properties in vivo.
Keyphrases
  • endothelial cells
  • induced apoptosis
  • magnetic resonance imaging
  • computed tomography
  • vascular endothelial growth factor
  • cell cycle arrest
  • endoplasmic reticulum stress