3D printed scaffold design for bone defects with improved mechanical and biological properties.
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P. Bártolo | G. Blunn | B. Koç | G. Cooper | A. Fallah | Mine Altunbek | Andrew Weightman
[1] A. Fallah,et al. Effect of zinc-doped hydroxyapatite/graphene nanocomposite on the physicochemical properties and osteogenesis differentiation of 3D-printed polycaprolactone scaffolds for bone tissue engineering , 2021 .
[2] Atefeh Zarepour,et al. Spinal Cord Injury Management through the Combination of Stem Cells and Implantable 3D Bioprinted Platforms , 2021, Cells.
[3] Ashley A. Vu,et al. Effects of surface area and topography on 3D printed tricalcium phosphate scaffolds for bone grafting applications. , 2021, Additive manufacturing.
[4] Y. Yang,et al. Regenerative Approaches for the Treatment of Large Bone Defects. , 2020, Tissue engineering. Part B, Reviews.
[5] Thomas P. James,et al. Stress–Strain Relationship of Polycaprolactone in Liquid Nitrogen for Finite Element Simulation of Cryogenic Micropunching Process , 2020 .
[6] Cynthia S. Wong,et al. Cell proliferation and migration explain pore bridging dynamics in 3D printed scaffolds of different pore size. , 2020, Acta biomaterialia.
[7] Yusheng Shi,et al. Tailored Mechanical Response and Mass Transport Characteristic of Selective Laser Melted Porous Metallic Biomaterials for Bone Scaffolds. , 2020, Acta biomaterialia.
[8] S. Lee,et al. The effect of 3D printing on the morphological and mechanical properties of polycaprolactone filament and scaffold , 2020 .
[9] R. Narayan,et al. Finite element evaluations of the mechanical properties of polycaprolactone/hydroxyapatite scaffolds by direct ink writing: Effects of pore geometry. , 2020, Journal of the mechanical behavior of biomedical materials.
[10] T. Gasser,et al. Computational and experimental characterization of 3D-printed PCL structures toward the design of soft biological tissue scaffolds , 2020 .
[11] P. Ige,et al. Poly-ε-caprolactone (PCL), a promising polymer for pharmaceutical and biomedical applications: Focus on nanomedicine in cancer , 2020, International Journal of Polymeric Materials and Polymeric Biomaterials.
[12] S. Blanquer,et al. Permeability and fluid flow-induced wall shear stress in bone scaffolds with TPMS and lattice architectures: A CFD analysis , 2020, European Journal of Mechanics - B/Fluids.
[13] A Tejo-Otero,et al. 3D Printing in Medicine for Preoperative Surgical Planning: A Review , 2019, Annals of Biomedical Engineering.
[14] Young-Sam Cho,et al. Assessment of osteogenesis for 3D-printed polycaprolactone/hydroxyapatite composite scaffold with enhanced exposure of hydroxyapatite using rat calvarial defect model , 2019, Composites Science and Technology.
[15] D. Kelly,et al. Integrating finite element modelling and 3D printing to engineer biomimetic polymeric scaffolds for tissue engineering , 2019, Connective tissue research.
[16] A. M. Kuthe,et al. Geometric Modeling and Finite Element Simulation for Architecture Design of 3D Printed Bio-ceramic Scaffold Used in Bone Tissue Engineering , 2019, Journal of the Indian Institute of Science.
[17] Swee Hin Teoh,et al. 3D printed polycaprolactone scaffolds for bone regeneration-success and future perspective. , 2019, Tissue engineering. Part A.
[18] Xiaowei Yang,et al. Structural mechanics of 3D-printed poly(lactic acid) scaffolds with tetragonal, hexagonal and wheel-like designs , 2019, Biofabrication.
[19] Zhinan Zhang,et al. 3D gel-printing of hydroxyapatite scaffold for bone tissue engineering , 2019, Ceramics International.
[20] K. Dalgarno,et al. Multi-compartment scaffold fabricated via 3D-printing as in vitro co-culture osteogenic model , 2018, Scientific Reports.
[21] Seong-Ho Choi,et al. 3D-printed polycaprolactone scaffold mixed with β-tricalcium phosphate as a bone regenerative material in rabbit calvarial defects. , 2018, Journal of biomedical materials research. Part B, Applied biomaterials.
[22] C. Laurencin,et al. Polymeric Biomaterials for Scaffold-Based Bone Regenerative Engineering , 2018, Regenerative Engineering and Translational Medicine.
[23] D. Qiu,et al. Porous Particle-Reinforced Bioactive Gelatin Scaffold for Large Segmental Bone Defect Repairing. , 2018, ACS applied materials & interfaces.
[24] M. A. Alias,et al. Osteoblasts infill irregular pores under curvature and porosity controls: a hypothesis-testing analysis of cell behaviours , 2017, Biomechanics and modeling in mechanobiology.
[25] C. Kasper,et al. Development and Characterization of a Parallelizable Perfusion Bioreactor for 3D Cell Culture , 2017, Bioengineering.
[26] M. D. Vlad,et al. Design and properties of 3D scaffolds for bone tissue engineering. , 2016, Acta biomaterialia.
[27] Nico Verdonschot,et al. Endothelial cell alignment as a result of anisotropic strain and flow induced shear stress combinations , 2016, Scientific Reports.
[28] Zohreh Izadifar,et al. Modulating mechanical behaviour of 3D-printed cartilage-mimetic PCL scaffolds: influence of molecular weight and pore geometry , 2016, Biofabrication.
[29] T. Vaughan,et al. Quantification of fluid shear stress in bone tissue engineering scaffolds with spherical and cubical pore architectures , 2016, Biomechanics and modeling in mechanobiology.
[30] Hala Zreiqat,et al. Design and Fabrication of 3D printed Scaffolds with a Mechanical Strength Comparable to Cortical Bone to Repair Large Bone Defects , 2016, Scientific Reports.
[31] Z. C. Silveira,et al. Software to generate 3-D continuous printing paths for the fabrication of tissue engineering scaffolds , 2015 .
[32] D. Lacroix,et al. The inter-sample structural variability of regular tissue-engineered scaffolds significantly affects the micromechanical local cell environment , 2015, Interface Focus.
[33] Anthony Atala,et al. 3D bioprinting of tissues and organs , 2014, Nature Biotechnology.
[34] Manoel Luis Costa,et al. 2D and 3D-Organized Cardiac Cells Shows Differences in Cellular Morphology, Adhesion Junctions, Presence of Myofibrils and Protein Expression , 2012, PloS one.
[35] P R Fernandes,et al. Permeability analysis of scaffolds for bone tissue engineering. , 2012, Journal of biomechanics.
[36] Kenneth M. Yamada,et al. Direct comparisons of the morphology, migration, cell adhesions, and actin cytoskeleton of fibroblasts in four different three-dimensional extracellular matrices. , 2011, Tissue engineering. Part A.
[37] K. Dai,et al. Effects of flow shear stress and mass transport on the construction of a large-scale tissue-engineered bone in a perfusion bioreactor. , 2009, Tissue engineering. Part A.
[38] P. Soucacos,et al. Bone scaffolds: the role of mechanical stability and instrumentation. , 2005, Injury.
[39] A. Bandyopadhyay,et al. From CT Scan to Ceramic Bone Graft , 2003 .
[40] Amit Bandyopadhyay,et al. Processing of controlled porosity ceramic structures via fused deposition , 1999 .
[41] T. M. Keaveny,et al. Dependence of Intertrabecular Permeability on Flow Direction and Anatomic Site , 1999, Annals of Biomedical Engineering.
[42] C. Perry,et al. Bone repair techniques, bone graft, and bone graft substitutes. , 1999, Clinical orthopaedics and related research.
[43] D. Clawson,et al. Closed intramedullary nailing of femoral fractures. A report of five hundred and twenty cases. 1984. , 1984, The Journal of bone and joint surgery. American volume.
[44] Gordon W. Blunn,et al. Biomanufacturing of customized modular scaffolds for critical bone defects , 2019, CIRP Annals.
[45] Niklas Sandler,et al. Vascularized 3D printed scaffolds for promoting bone regeneration. , 2019, Biomaterials.
[46] Ibrahim T. Ozbolat,et al. Current advances and future perspectives in extrusion-based bioprinting. , 2016, Biomaterials.
[47] T. Vaughan,et al. Multiscale fluid–structure interaction modelling to determine the mechanical stimulation of bone cells in a tissue engineered scaffold , 2015, Biomechanics and modeling in mechanobiology.
[48] O. Ashman,et al. Treatment of non-unions with bone defects: which option and why? , 2013, Injury.
[49] A. Bandyopadhyay,et al. Development of Porous Polymer-Ceramic Composites as Bone Grafts , 2002 .