3D bioprinted osteosarcoma model for experimental boron neutron capture therapy (BNCT) applications: Preliminary assessment

Author:

Delgrosso Elena1ORCID,Scocozza Franca2,Cansolino Laura13,Riva Federica4,Conti Michele2,Loi Giada2,Auricchio Ferdinando2,Postuma Ian3,Bortolussi Silva35,Cobianchi Lorenzo16,Ferrari Cinzia137

Affiliation:

1. Department of Clinical Surgical Sciences; integrated unit of experimental surgery, advanced microsurgery and regenerative medicine University of Pavia Pavia Italy

2. Department of Civil Engineering and Architecture University of Pavia Pavia Italy

3. National Institute of Nuclear Physics Unit of Pavia Pavia Italy

4. Department of Public Health, Experimental and Forensic Medicine, Histology and Embryology Unit University of Pavia Pavia Italy

5. Department of Physics University of Pavia Pavia Italy

6. IRCCS S. Matteo Hospital Pavia Italy

7. Animal Care and Radiobiology Centre University of Pavia Pavia Italy

Abstract

AbstractOsteosarcoma is the most frequently primary malignant bone tumor characterized by infiltrative growth responsible for relapses and metastases. Treatment options are limited, and a new therapeutic option is required. Boron neutron capture therapy (BNCT) is an experimental alternative radiotherapy able to kill infiltrative tumor cells spearing surrounding healthy tissues. BNCT studies are performed on 2D in vitro models that are not able to reproduce pathological tumor tissue organization or on in vivo animal models that are expensive, time‐consuming and must follow the 3R's principles. A 3D in vitro model is a solution to better recapitulate the complexity of solid tumors meanwhile limiting the animal's use. Objective of this study is to optimize the technical assessment for developing a 3D in vitro osteosarcoma model as a platform for BNCT studies: printing protocol, biomaterial selection, cell density, and crosslinking process. The best parameters that allow a fully colonized 3D bioprinted construct by rat osteosarcoma cell line UMR‐106 are 6 × 106 cells/ml of hydrogel and 1% CaCl2 as a crosslinking agent. The proposed model could be an alternative or a parallel approach to 2D in vitro culture and in vivo animal models for BNCT experimental study.

Publisher

Wiley

Subject

Biomedical Engineering,Biomaterials

Reference28 articles.

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