Chemical engineering methods in analyses of 3D cancer cell cultures: Hydrodinamic and mass transport considerations

Author:

Radonjic Mia1,Petrovic Jelena1,Milivojevic Milena2ORCID,Stevanovic Milena3ORCID,Stojkovska Jasmina1ORCID,Obradovic Bojana4ORCID

Affiliation:

1. Faculty of Technology and Metallurgy, University of Belgrade, Belgrade, Serbia + Innovation Center of the Faculty of Technology and Metallurgy, Belgrade, Serbia

2. Institute of Molecular Genetics and Genetic Engineering, University of Belgrade, Belgrade, Serbia

3. Institute of Molecular Genetics and Genetic Engineering, University of Belgrade, Belgrade, Serbia + Faculty of Biology, University of Belgrade, Belgrade, Serbia + Serbian Academy of Sciences and Arts, Belgrade, Serbia

4. Faculty of Technology and Metallurgy, University of Belgrade, Belgrade, Serbia

Abstract

A multidisciplinary approach based on experiments and mathematical modeling was used in biomimetic system development for three-dimensional (3D) cultures of cancer cells. Specifically, two cancer cell lines, human embryonic teratocarcinoma NT2/D1 and rat glioma C6, were immobilized in alginate microbeads and microfibers, respectively, and cultured under static and flow conditions in perfusion bioreactors, while chemical engineering methods were applied to explain the obtained results. The superficial medium velocity of 80 mm s-1 induced lower viability of NT2/D1 cells in superficial microbead zones implying adverse effects of fluid shear stresses estimated as ~67 mPa. On the contrary, similar velocity (100 mm s-1) enhanced proliferation of C6 glioma cells within microfibers as compared to static controls. An additional study of silver release from nanocomposite Ag/honey/alginate microfibers under perfusion indicated that medium partially flows through the hydrogel (interstitial velocity of ~10 nm s-1). Thus, a diffusion-advection-reaction model was applied to describe the mass transport to immobilized cells within microfibers. Substances with diffusion coefficients of ?10-9-10-11 m2 s-1 are sufficiently supplied by diffusion only, while those with significantly lower diffusivities (?10-19 m2 s-1) require additional convective transport. The present study demonstrates the selection and contribution of chemical engineering methods in tumor model system development.

Funder

Ministry of Education, Science and Technological Development of the Republic of Serbia

Publisher

National Library of Serbia

Subject

General Chemical Engineering

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