Development of Mg-Alginate Based Self Disassociative Bio-Ink for Magnetic Bio-Patterning of 3d Tumor Models

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Sahin, Hasan
Arslan-Yildiz, Ahu

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Abstract

Alginate forms a hydrogel via physical cross-linking with divalent cations. In literature, Ca2+ is mostly utilized due to strong interactions but additional procedures are required to disassociate Ca-alginate hydrogels. On the other hand, Mg-alginate hydrogels disassociate spontaneously, which might benefit certain applications. This study introduces Mg-alginate as the main component of a bio-ink for the first time to obtain 3D tumor models by magnetic bio-patterning technique. The bio-ink contains magnetic nanoparticles (MNPs) for magnetic manipulation, Mg-alginate hydrogel as a sacrificial material, and cells. The applicability of the methodology is tested for the formation of 3D tumor models using HeLa, SaOS-2, and SH-SY5Y cells. Long-term cultures are examined by Live/dead and MTT analysis and revealed high cell viability. Subsequently, Collagen and F-actin expressions are observed successfully in 3D tumor models. Finally, the anti-cancer drug Doxorubicin (DOX) effect is investigated on 3D tumor models, and IC50 values is calculated to assess the drug response. As a result, significantly higher drug resistance is observed for bio-patterned 3D tumor models up to tenfold compared to 2D control. Overall, Mg-alginate hydrogel is successfully used to form bio-patterned 3D tumor models, and the applicability of the model is shown effectively, especially as a drug screening platform.

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Arslan Yildiz, Ahu/0000-0003-0348-0575

Keywords

3D tumor model, bio-patterning, contactless magnetic manipulation, drug screening, Mg-alginate bio-ink, self-disassociation, Alginates, Cell Survival, Hexuronic Acids, Hydrogels, Glucuronic Acid, Doxorubicin, Cell Line, Tumor, Neoplasms, Humans, Cell Culture Techniques, Three Dimensional, Magnetite Nanoparticles, HeLa Cells

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0301 basic medicine, 0303 health sciences, 03 medical and health sciences

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25

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