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Numerical and experimental simulation of a dynamic-rotational 3D cell culture for stratified living tissue models.
Canadas, Raphaël F; Liu, Ziyu; Gasperini, Luca; Fernandes, Diogo C; Maia, Fátima R; Reis, Rui L; Marques, Alexandra P; Liu, Chaozong; Oliveira, Joaquim M.
Afiliación
  • Canadas RF; 3B'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, Zona Industrial da Gandra, 4805-017 Barco GMR, Portugal.
  • Liu Z; ICVS/3B's-PT Government Associate Laboratory, Braga/Guimarães, Portugal.
  • Gasperini L; Division of Surgery and Interventional Science, University College London, Royal National Orthopaedic Hospital, London HA7 4LP, United Kingdom.
  • Fernandes DC; Tech4MED™, UPTEC, ASPRELA I, Office-Lab 0.16, Business Campus, n.° 455/461, 4200-135 Porto, Portugal.
  • Maia FR; Division of Surgery and Interventional Science, University College London, Royal National Orthopaedic Hospital, London HA7 4LP, United Kingdom.
  • Reis RL; Beijing Advanced Innovation Centre for Biomedical Engineering, School of Engineering Medicine, Beihang University, Beijing, 100083, People's Republic of China.
  • Marques AP; 3B'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, Zona Industrial da Gandra, 4805-017 Barco GMR, Portugal.
  • Liu C; ICVS/3B's-PT Government Associate Laboratory, Braga/Guimarães, Portugal.
  • Oliveira JM; 3B'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, Zona Industrial da Gandra, 4805-017 Barco GMR, Portugal.
Biofabrication ; 14(2)2022 03 16.
Article en En | MEDLINE | ID: mdl-35172294
ABSTRACT
Human tissues and organs are inherently heterogeneous, and their functionality is determined by the interplay between different cell types, their secondary architecture, and gradients of signalling molecules and metabolites. To mimic the dynamics of native tissues, perfusion bioreactors and microfluidic devices are widely used in tissue engineering (TE) applications for enhancing cell culture viability in the core of 3D constructs. Still, mostin vitroscreening methods for compound efficacy and toxicity assessment include cell or tissue exposure to constant and homogeneous compound concentrations over a defined testing period. Moreover, a prevalent issue inhibiting the large-scale adoption of microfluidics and bioreactor is the tubing dependence to induce a perfusion regime. Here, we propose a compartmentalized rotational (CR) 3D cell culture platform for a stable control over gradient tissue culture conditions. Using the CR bioreactor, adjacent lanes of constructs are patterned by controlled flow dynamics to enable tissue stratification. Numerical and experimental simulations demonstrate cell seeding dynamics, as well as culture media rotational perfusion and gradient formations. Additionally, the developed system induces vertical and horizontal rotations, which increase medium exchange and homogeneous construct maturation, allowing both perfused tubing-based and tubing-free approaches. As a proof-of-concept, experiments and accompanying simulation of cellular inoculation and growth in 3D scaffold and hydrogel were performed, before the examination of a blood-brain-barrier model, demonstrating the impact of a heterotypic culture on molecular permeability under mimetic dynamic conditions. Briefly, the present work discloses the simulation of 3D dynamic cultures, and a semi-automated platform for heterotypic tissuesin vitromodelling, for broad TE and drug discovery/screening applications.
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Texto completo: 1 Base de datos: MEDLINE Asunto principal: Ingeniería de Tejidos / Técnicas de Cultivo Tridimensional de Células Idioma: En Revista: Biofabrication Asunto de la revista: BIOTECNOLOGIA Año: 2022 Tipo del documento: Article

Texto completo: 1 Base de datos: MEDLINE Asunto principal: Ingeniería de Tejidos / Técnicas de Cultivo Tridimensional de Células Idioma: En Revista: Biofabrication Asunto de la revista: BIOTECNOLOGIA Año: 2022 Tipo del documento: Article