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You are researching: Polypropylene Oxide (PPO)
                                                    Cell Type
                                                    Tissue and Organ Biofabrication
                                                    Skin Tissue Engineering
                                                    Drug Delivery
                                                    Biological Molecules
                                                    Solid Dosage Drugs
                                                    Stem Cells
                                                    Personalised Pharmaceuticals
                                                    Inducend Pluripotent Stem Cells (IPSCs)
                                                    Drug Discovery
                                                    Cancer Cell Lines
                                            
                                    
                    All Groups
                    
            - Biomaterial
- Non-cellularized gels/pastes
	- Poly(Oxazoline)
- 2-hydroxyethyl methacrylate (HEMA)
- Poly(trimethylene carbonate)
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- Pluronic – Poloxamer
- Polyisobutylene
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- Bioprinting Technologies
- Bioprinting Applications
- Cell Type
- Chondrocytes
- Embrionic Kidney (HEK)
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- Organoids
- Stem Cells
- Spheroids
- Meniscus Cells
- Synoviocytes
- Keratinocytes
- Skeletal Muscle-Derived Cells (SkMDCs)
- Neurons
- Macrophages
- Human Trabecular Meshwork Cells
- Endothelial
- CardioMyocites
- Melanocytes
- Retinal
 
- Institution
- AO Research Institute (ARI)
- Shanghai University
- Univerity of Hong Kong
- University of Toronto
- Brown University
- Polish Academy of Sciences
- University of Wurzburg
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- University of Nantes
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- Biomaterials & Bioinks
- Application
- Bioelectronics
- Biomaterial Processing
- Tissue Models – Drug Discovery
- Industrial
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- Robotics
- Electronics – Robotics – Industrial
- Medical Devices
- Tissue and Organ Biofabrication
	- Trachea Tissue Engineering
- Ocular Tissue Engineering
- Intervertebral Disc (IVD) Tissue Engineering
- Muscle Tissue Engineering
- Liver tissue Engineering
- Cartilage Tissue Engineering
- Bone Tissue Engineering
- Dental Tissue Engineering
- Drug Delivery
- Urethra Tissue Engineering
- Skin Tissue Engineering
- Uterus Tissue Engineering
- Gastric Tissue Engineering
- Nerve – Neural Tissue Engineering
- Meniscus Tissue Engineering
- Heart – Cardiac Patches Tissue Engineering
- Adipose Tissue Engineering
 
- BioSensors
- Personalised Pharmaceuticals
 
- Review Paper
- Printing Technology
                            AUTHOR
                            
                                    
                                
                        
                        
                            Title
                            
                                    Design and Implementation of an Accessible 3D Bioprinter: Benchmarking the Performance of a Home-Made Bioprinter against a Professional Bioprinter
                                
                                                            
                                    
                                        
                                            [Abstract]
                                        
                                    
                                
                                                    
                                                
                            Year
                            
                                    2023
                                
                        
                        
                            Journal/Proceedings
                            
                                    Applied Sciences
                                
                        
                        
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                                                                                                AbstractThe tremendous application potential of 3D bioprinting in the biomedical field is witnessed by the ever-increasing interest in this technology over the past few years. In particular, the possibility of obtaining 3D cellular models that mimic tissues with precision and reproducibility represents a definitive advance for in vitro studies dealing with the biological mechanisms of cell growth, death and proliferation and is at the basis of the responses of healthy and pathological tissues to drugs and therapies. However, the impact of 3D bioprinting on research is limited by the high costs of professional 3D bioprinters, which represent an obstacle to the widespread access and usability of this technology. In this work, we present a 3D bioprinter that was developed in-house by modifying a low-cost commercial 3D printer by replacing the default extruder used to print plastic filaments with a custom-made syringe extruder that is suitable for printing bioinks. The modifications made to the 3D printer include adjusting the size of the extruder to accommodate a 1 mL syringe and reducing the extruder’s size above the printer. To validate the performance of the home-made bioprinter, some main printing characteristics, the cell vitality and the possibility of bioprinting CAD-designed constructs were benchmarked against a renowned professional 3D bioprinter by RegenHu. According to our findings, our in-house 3D bioprinter was mostly successful in printing a complex glioblastoma tumor model with good performances, and it managed to maintain a cell viability that was comparable to that achieved by a professional bioprinter. This suggests that an accessible open-source 3D bioprinter could be a viable option for research and development (R&D) laboratories interested in pre-commercial 3D bioprinting advancements.

