Challenges on optimization of 3D-printed bone scaffolds

[1]  K. Cleary,et al.  Image Guided Interventions. , 2020, Biomedizinische Technik. Biomedical engineering.

[2]  M. Surmeneva,et al.  In situ synthesis of a binary Ti–10at% Nb alloy by electron beam melting using a mixture of elemental niobium and titanium powders , 2020 .

[3]  Manuela Teresa Raimondi,et al.  Advances in Tissue Engineering and Innovative Fabrication Techniques for 3-D-Structures: Translational Applications in Neurodegenerative Diseases , 2020, Cells.

[4]  J. Boland,et al.  Crystallographically Controlled Synthesis of SnSe Nanowires: Potential in Resistive Memory Devices , 2020, Advanced Materials Interfaces.

[5]  P. Stoddart,et al.  Patterning of biomaterials by aerosol jet printing: A parametric study , 2020 .

[6]  Geunhyung Kim,et al.  3D bioprinting of functional cell-laden bioinks and its application for cell-alignment and maturation , 2020 .

[7]  Teck Hui Ngo,et al.  A hybrid multi-objective optimization of aerosol jet printing process via response surface methodology , 2020, Additive Manufacturing.

[8]  D. Kelly,et al.  Reinforcing interpenetrating network hydrogels with 3D printed polymer networks to engineer cartilage mimetic composites , 2020, Biofabrication.

[9]  F. Vasile,et al.  Hydrogen Bonding in a l-Glutamine-Based Polyamidoamino Acid and its pH-Dependent Self-Ordered Coil Conformation , 2020, Polymers.

[10]  C. Yan,et al.  Artificial bone scaffolds of coral imitation prepared by selective laser sintering. , 2020, Journal of the mechanical behavior of biomedical materials.

[11]  P. Ji,et al.  1α,25-Dihydroxyvitamin D3-loaded hierarchical titanium scaffold enhanced early osseointegration. , 2020, Materials science & engineering. C, Materials for biological applications.

[12]  Xiongbiao Chen,et al.  Bioprinting and in vitro characterization of alginate dialdehyde–gelatin hydrogel bio-ink , 2020 .

[13]  G. Fang,et al.  Biomechanical influence of structural variation strategies on functionally graded scaffolds constructed with triply periodic minimal surface , 2020, Additive Manufacturing.

[14]  Yanguo Qin,et al.  Antibacterial effects of silver incorporated zeolite coatings on 3D printed porous stainless steels. , 2020, Materials science & engineering. C, Materials for biological applications.

[15]  Y. Lv,et al.  Scaffold strategies for modulating immune microenvironment during bone regeneration. , 2020, Materials science & engineering. C, Materials for biological applications.

[16]  Yusheng Shi,et al.  Indirect selective laser sintering-printed microporous biphasic calcium phosphate scaffold promotes endogenous bone regeneration via activation of ERK1/2 signaling , 2020, Biofabrication.

[17]  Akhilesh K Gaharwar,et al.  Bioprinting 101: Design, Fabrication and Evaluation of Cell-laden 3D Bioprinted Scaffolds. , 2020, Tissue engineering. Part A.

[18]  Chunqiu Zhang,et al.  Mechanical behavior of a titanium alloy scaffold mimicking trabecular structure , 2020, Journal of Orthopaedic Surgery and Research.

[19]  M. Fiorentino,et al.  Mechanobiological Approach to Design and Optimize Bone Tissue Scaffolds 3D Printed with Fused Deposition Modeling: A Feasibility Study , 2020, Materials.

[20]  Syed Hammad Mian,et al.  Integrative and multi-disciplinary framework for the 3D rehabilitation of large mandibular defects , 2020 .

[21]  Jin-Ho Kang,et al.  Mechanical properties and optical evaluation of scaffolds produced from 45S5 bioactive glass suspensions via stereolithography , 2020 .

[22]  Wenbo Jiang,et al.  Functionalized TiCu/Ti‐Cu‐N‐Coated 3D‐Printed Porous Ti6Al4V Scaffold Promotes Bone Regeneration through BMSC Recruitment , 2020, Advanced Materials Interfaces.

[23]  C. Shuai,et al.  Graphene Oxide Induces Ester Bonds Hydrolysis of Poly-l-lactic Acid Scaffold to Accelerate Degradation , 2020, International journal of bioprinting.

[24]  C. Shuai,et al.  A magnetic micro-environment in scaffolds for stimulating bone regeneration , 2020 .

[25]  C. Shuai,et al.  Phosphonic Acid Coupling Agent Modification of HAP Nanoparticles: Interfacial Effects in PLLA/HAP Bone Scaffold , 2020, Polymers.

[26]  Shreya Agrawal,et al.  Osteoinductive and Osteoconductive Biomaterials , 2020 .

[27]  Deqiao Xie,et al.  Design and statistical analysis of irregular porous scaffolds for orthopedic reconstruction based on voronoi tessellation and fabricated via selective laser melting (SLM) , 2020 .

[28]  Dakshina Ranjan Kisku,et al.  A New Approach to Quantify the Uniformity Grade of the Electrohydrodynamic Inkjet Printed Features and Optimization of Process Parameters Using Nature-Inspired Algorithms , 2019, International Journal of Precision Engineering and Manufacturing.

[29]  E. Plougonven,et al.  In vitro and in vivo biocompatibility of calcium-phosphate scaffolds 3D printed by stereolithography for bone regeneration. , 2020, Journal of biomedical materials research. Part A.

[30]  A. A. Zadpoor,et al.  Additively manufactured biodegradable porous zinc. , 2020, Acta biomaterialia.

[31]  Jiang Du,et al.  Magnetic resonance imaging (MRI) studies of knee joint under mechanical loading: Review. , 2020, Magnetic resonance imaging.

[32]  M. Bermingham,et al.  Additively Manufactured Iron-Manganese for Biodegradable Porous Load-Bearing Bone Scaffold Applications. , 2019, Acta biomaterialia.

[33]  H. B. Eral,et al.  Shape anisotropic colloidal particle fabrication using 2-photon polymerization. , 2019, Journal of colloid and interface science.

[34]  M. Gou,et al.  3D-engineered GelMA conduit filled with ECM promotes regeneration of peripheral nerve. , 2019, Journal of biomedical materials research. Part A.

[35]  Lars-Erik Rännar,et al.  Macro- and Micromechanical Behavior of 316LN Lattice Structures Manufactured by Electron Beam Melting , 2019, Journal of Materials Engineering and Performance.

[36]  Christopher S. Chen,et al.  From Simple to Architecturally Complex Hydrogel Scaffolds for Cell and Tissue Engineering Applications: Opportunities Presented by Two‐Photon Polymerization , 2019, Advanced healthcare materials.

[37]  Ahmad Baroutaji,et al.  Mechanical performance of highly permeable laser melted Ti6Al4V bone scaffolds. , 2019, Journal of the mechanical behavior of biomedical materials.

[38]  Ahmad Oryan,et al.  Preparation and characterization of PLA/PCL/HA composite scaffolds using indirect 3D printing for bone tissue engineering. , 2019, Materials science & engineering. C, Materials for biological applications.

[39]  Wei Chen,et al.  Personalized Design of Functional Gradient Bone Tissue Engineering Scaffold. , 2019, Journal of biomechanical engineering.

[40]  Jeremy Faludi,et al.  Do Student Trials Predict What Professionals Value in Sustainable Design Practices? , 2019, Journal of Mechanical Design.

[41]  A. A. Zadpoor,et al.  Submicron Patterns-on-a-Chip: Fabrication of a Microfluidic Device Incorporating 3D Printed Surface Ornaments. , 2019, ACS biomaterials science & engineering.

[42]  H. Montazerian,et al.  Permeability and mechanical properties of gradient porous PDMS scaffolds fabricated by 3D-printed sacrificial templates designed with minimal surfaces. , 2019, Acta biomaterialia.

[43]  M. Elbestawi,et al.  Process–Structure–Property Relationships in Selective Laser Melting of Porosity Graded Gyroids , 2019, Journal of Medical Devices.

[44]  Ibrahim T. Ozbolat,et al.  Bioprinting functional tissues. , 2019, Acta biomaterialia.

[45]  Yogendra Pratap Singh,et al.  3D Bioprinting using Cross-Linker Free Silk-Gelatin Bioink for Cartilage Tissue Engineering. , 2019, ACS applied materials & interfaces.

[46]  R. Zengerle,et al.  Examination of Hydrogels and Mesenchymal Stem Cell Sources for Bioprinting of Artificial Osteogenic Tissues , 2019, Cellular and Molecular Bioengineering.

[47]  M. Monzón,et al.  Optimization methodology for the material assignation in bioprinted scaffolds to achieve the desired stiffness over time , 2019, International journal for numerical methods in biomedical engineering.

[48]  M. Bahraminasab,et al.  Mechanobiological assessment of Ti-6Al-4V fabricated via selective laser melting technique: a review , 2019, Rapid Prototyping Journal.

[49]  Ivana M. Cotabarren,et al.  An assessment of the dimensional accuracy and geometry-resolution limit of desktop stereolithography using response surface methodology , 2019, Rapid Prototyping Journal.

[50]  Li Yang,et al.  3D printing of highly-loaded slurries via layered extrusion forming: Parameters optimization and control , 2019, Additive Manufacturing.

[51]  R. Poprawe,et al.  Development of a solvent-free polylactide/calcium carbonate composite for selective laser sintering of bone tissue engineering scaffolds. , 2019, Materials science & engineering. C, Materials for biological applications.

[52]  Qinghui Wang,et al.  Coupling control of pore size and spatial distribution in bone scaffolds based on a random strategy for additive manufacturing , 2019, Rapid Prototyping Journal.

[53]  J. Ciurana,et al.  Optimization of Photocrosslinkable Resin Components and 3D Printing Process Parameters. , 2019, Acta biomaterialia.

[54]  T. Boland,et al.  Thermal inkjet bioprinting triggers the activation of the VEGF pathway in human microvascular endothelial cells in vitro , 2019, Biofabrication.

[55]  K. Amighi,et al.  Investigation of the parameters used in fused deposition modeling of poly(lactic acid) to optimize 3D printing sessions. , 2019, International journal of pharmaceutics.

[56]  R. Palgrave,et al.  Application of high resolution DLP stereolithography for fabrication of tricalcium phosphate scaffolds for bone regeneration , 2019, Biomedical materials.

[57]  Levent Burak Kara,et al.  Concurrent Structure and Process Optimization for Minimum Cost Metal Additive Manufacturing , 2019, Journal of Mechanical Design.

[58]  J. Ferreira,et al.  OPTIMIZATION OF ZIRCONIA INKS TO FABRICATE 3D POROUS SCAFFOLDS BY ROBOCASTING , 2019 .

[59]  Jana Klímová,et al.  APPLICATION OF SENSORY SYSTEMS TO MOVE DOGS WITH VISUAL IMPAIRMENT , 2019 .

[60]  K. Essa,et al.  University of Birmingham Optimization of SLM Process Parameters for Ti6Al4V Medical Implants , 2018 .

[61]  Xuan Pei,et al.  Bionic design and 3D printing of porous titanium alloy scaffolds for bone tissue repair , 2019, Composites Part B: Engineering.

[62]  Dichen Li,et al.  Biphasic osteochondral scaffold fabrication using multi-material mask projection stereolithography , 2019, Rapid Prototyping Journal.

[63]  T. Cramer,et al.  Reliability of inkjet printed silver nanoparticle interconnects on deformable substrates tested through an electromechanical in-situ technique , 2019, MRS Communications.

[64]  S. Zahedi,et al.  3D printing of bone scaffolds with hybrid biomaterials , 2019, Composites Part B: Engineering.

[65]  L. Murr Strategies for creating living, additively manufactured, open-cellular metal and alloy implants by promoting osseointegration, osteoinduction and vascularization: An overview , 2019, Journal of Materials Science & Technology.

[66]  T. Oberbach,et al.  Process development for additive manufacturing of functionally graded alumina toughened zirconia components intended for medical implant application , 2019, Journal of the European Ceramic Society.

[67]  C. E. Corcione,et al.  Highly loaded hydroxyapatite microsphere/ PLA porous scaffolds obtained by fused deposition modelling , 2019, Ceramics International.

[68]  Zhinan Zhang,et al.  3D gel-printing of hydroxyapatite scaffold for bone tissue engineering , 2019, Ceramics International.

[69]  Tomasz Kurzynowski,et al.  Development of manufacturing method of the MAP21 magnesium alloy prepared by selective laser melting (SLM). , 2019, Acta of bioengineering and biomechanics.

[70]  D. Begic-Hajdarevic,et al.  Optimization of Stereolithography and Fused Deposition Modeling Process Parameters , 2019, DAAAM Proceedings.

[71]  C. Shuai,et al.  Functionalized BaTiO3 enhances piezoelectric effect towards cell response of bone scaffold. , 2019, Colloids and surfaces. B, Biointerfaces.

[72]  Marjan Bahraminasab,et al.  Computational Tailoring of Orthopaedic Biomaterials: Design Principles and Aiding Tools , 2019, Biomaterials in Orthopaedics and Bone Regeneration.

[73]  J. Ferreira,et al.  Novel sintering-free scaffolds obtained by additive manufacturing for concurrent bone regeneration and drug delivery: Proof of concept. , 2019, Materials science & engineering. C, Materials for biological applications.

[74]  Daniel Chen Extrusion Bioprinting of Scaffolds for Tissue Engineering Applications , 2018 .

[75]  P. Ji,et al.  The effect of 3D-printed Ti6Al4V scaffolds with various macropore structures on osteointegration and osteogenesis: A biomechanical evaluation. , 2018, Journal of the mechanical behavior of biomedical materials.

[76]  L. Roshangar,et al.  An Experimental Study on the Mechanical and Biological Properties of Bio-Printed Alginate/Halloysite Nanotube/Methylcellulose/Russian Olive-Based Scaffolds , 2018, Advanced pharmaceutical bulletin.

[77]  Ralf Smeets,et al.  An Introduction to 3D Bioprinting: Possibilities, Challenges and Future Aspects , 2018, Materials.

[78]  R. Poprawe,et al.  Influence of the material properties of a poly(D,L-lactide)/β-tricalcium phosphate composite on the processability by selective laser sintering. , 2018, Journal of the mechanical behavior of biomedical materials.

[79]  Vee San Cheong,et al.  Novel adaptive finite element algorithms to predict bone ingrowth in additive manufactured porous implants. , 2018, Journal of the mechanical behavior of biomedical materials.

[80]  S. A. Razak,et al.  Effects of extrusion pressure and printing speed of 3D bioprinted construct on the fibroblast cells viability , 2018, IOP Conference Series: Materials Science and Engineering.

[81]  M. Barbeck,et al.  Bioprinting of tissue engineering scaffolds , 2018, Journal of tissue engineering.

[82]  Yashwant Kumar Modi,et al.  Design and additive manufacturing of patient-specific cranial and pelvic bone implants from computed tomography data , 2018, Journal of the Brazilian Society of Mechanical Sciences and Engineering.

[83]  S. Varghese,et al.  Functionally graded multilayer scaffolds for in vivo osteochondral tissue engineering. , 2018, Acta biomaterialia.

[84]  H Weinans,et al.  Additively manufactured biodegradable porous iron. , 2018, Acta biomaterialia.

[85]  Q. Wei,et al.  Application of 3D printing technology in bone tissue engineering , 2018, Bio-Design and Manufacturing.

[86]  E. Jabbari Hydrogels for Cell Delivery , 2018, Gels.

[87]  C. Shuai,et al.  Positive feedback effects of Mg on the hydrolysis of poly-l-lactic acid (PLLA): Promoted degradation of PLLA scaffolds , 2018, Polymer Testing.

[88]  L. Koch,et al.  Human stem cell based corneal tissue mimicking structures using laser-assisted 3D bioprinting and functional bioinks. , 2018, Biomaterials.

[89]  Ming Yan,et al.  Tailoring nanostructure and bioactivity of 3D-printable hydrogels with self-assemble peptides amphiphile (PA) for promoting bile duct formation , 2018, Biofabrication.

[90]  Won‐Kyo Jung,et al.  Quantitative analysis of the role of nanohydroxyapatite (nHA) on 3D-printed PCL/nHA composite scaffolds , 2018, Materials Letters.

[91]  N. Pugno,et al.  Effect of rehabilitation exercise durations on the dynamic bone repair process by coupling polymer scaffold degradation and bone formation , 2018, Biomechanics and modeling in mechanobiology.

[92]  Brian C. Riggs,et al.  Pulsed photoinitiated fabrication of inkjet printed titanium dioxide/reduced graphene oxide nanocomposite thin films , 2018, Nanotechnology.

[93]  A. Rahimi,et al.  Stereolithography process optimization for tensile strength improvement of products , 2018 .

[94]  A. Janorkar,et al.  Optimization of collagen-elastin-like polypeptide composite tissue engineering scaffolds using response surface methodology. , 2018, Journal of the mechanical behavior of biomedical materials.

[95]  Yanning Zhang,et al.  Direct fabrication of compositionally graded Ti-Al2O3 multi-material structures using Laser Engineered Net Shaping , 2018 .

[96]  G. Reilly,et al.  Composite porous scaffold of PEG/PLA support improved bone matrix deposition in vitro compared to PLA-only scaffolds. , 2018, Journal of biomedical materials research. Part A.

[97]  F Kawecki,et al.  Self-assembled human osseous cell sheets as living biopapers for the laser-assisted bioprinting of human endothelial cells , 2018, Biofabrication.

[98]  Deqing Mei,et al.  Nanoscale 3D printing of hydrogels for cellular tissue engineering. , 2018, Journal of materials chemistry. B.

[99]  A. Zahradníková,et al.  Alterations in the health of hibernating bats under pathogen pressure , 2018, Scientific Reports.

[100]  L. Hao,et al.  Continuous functionally graded porous titanium scaffolds manufactured by selective laser melting for bone implants. , 2018, Journal of the mechanical behavior of biomedical materials.

[101]  K. Lietaert,et al.  Fatigue life of additively manufactured Ti6Al4V scaffolds under tension-tension, tension-compression and compression-compression fatigue load , 2018, Scientific Reports.

[102]  Miguel Oliveira,et al.  Functionally graded additive manufacturing to achieve functionality specifications of osteochondral scaffolds , 2018 .

[103]  Y. Shanjani,et al.  Customized, degradable, functionally graded scaffold for potential treatment of early stage osteonecrosis of the femoral head , 2018, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.

[104]  Sha Jin,et al.  Tissue and Organ 3D Bioprinting , 2018, SLAS technology.

[105]  Akhilesh K Gaharwar,et al.  Nanoengineered Ionic-Covalent Entanglement (NICE) Bioinks for 3D Bioprinting. , 2018, ACS applied materials & interfaces.

[106]  Yong-qiang Yang,et al.  Progress in selective laser melting equipment, related biomedical metallic materials and applications , 2018 .

[107]  M. Fiorentino,et al.  Rhombicuboctahedron unit cell based scaffolds for bone regeneration: geometry optimization with a mechanobiology - driven algorithm. , 2018, Materials science & engineering. C, Materials for biological applications.

[108]  Guang Yang,et al.  Bioprinting and its applications in tissue engineering and regenerative medicine. , 2018, International journal of biological macromolecules.

[109]  A. Sionkowska,et al.  New composite materials prepared by calcium phosphate precipitation in chitosan/collagen/hyaluronic acid sponge cross-linked by EDC/NHS. , 2018, International journal of biological macromolecules.

[110]  Juha Song,et al.  3D printing of hydrogel composite systems: Recent advances in technology for tissue engineering , 2018, International journal of bioprinting.

[111]  Wenmiao Shu,et al.  3D bioactive composite scaffolds for bone tissue engineering , 2017, Bioactive materials.

[112]  P. Ma,et al.  Conductive nanofibrous composite scaffolds based on in-situ formed polyaniline nanoparticle and polylactide for bone regeneration. , 2017, Journal of colloid and interface science.

[113]  M. Shukla,et al.  Lattice Modeling and CFD Simulation for Prediction of Permeability in Porous Scaffolds , 2018 .

[114]  K. Edwards,et al.  Biocomposites for Hard Tissue Replacement and Repair , 2018 .

[115]  K. Ridgway,et al.  Critical evaluation of the pulsed selective laser melting process when fabricating Ti64 parts using a range of particle size distributions , 2018 .

[116]  F. Fraternali,et al.  Investigations for mechanical properties of Hap, PVC and PP based 3D porous structures obtained through biocompatible FDM filaments , 2018 .

[117]  Vidosav D. Majstorović,et al.  Novel design approach for the creation of 3D geometrical model of personalized bone scaffold , 2018 .

[118]  Jie Liu,et al.  Parametric Design for Skull Tissue Engineering Vascular Scaffold , 2018 .

[119]  Šeila Selimović Nanopatterning and Nanoscale Devices for Biological Applications , 2017 .

[120]  B. Meyer,et al.  Factors influencing neurocognitive function in patients with neuroepithelial tumors , 2017, Scientific Reports.

[121]  Scott A. Wilson,et al.  Shear-Thinning and Thermo-Reversible Nanoengineered Inks for 3D Bioprinting. , 2017, ACS applied materials & interfaces.

[122]  D. Kelly,et al.  Tuning Alginate Bioink Stiffness and Composition for Controlled Growth Factor Delivery and to Spatially Direct MSC Fate within Bioprinted Tissues , 2017, Scientific Reports.

[123]  Barry J. Doyle,et al.  Parameter optimization for 3D bioprinting of hydrogels , 2017 .

[124]  Mohsen Badrossamay,et al.  Combinational processing of 3D printing and electrospinning of hierarchical poly(lactic acid)/gelatin-forsterite scaffolds as a biocomposite: Mechanical and biological assessment , 2017 .

[125]  Huiping Shao,et al.  3D gel-printing of zirconia ceramic parts , 2017 .

[126]  Davar Ali,et al.  Finite element analysis of mechanical behavior, permeability and fluid induced wall shear stress of high porosity scaffolds with gyroid and lattice-based architectures. , 2017, Journal of the mechanical behavior of biomedical materials.

[127]  M. Novák,et al.  Designing of PLA scaffolds for bone tissue replacement fabricated by ordinary commercial 3D printer , 2017, Journal of biological engineering.

[128]  Wai Yee Yeong,et al.  Material jetting additive manufacturing: An experimental study using designed metrological benchmarks , 2017 .

[129]  Ibrahim T. Ozbolat,et al.  Concise Review: Bioprinting of Stem Cells for Transplantable Tissue Fabrication , 2017, Stem cells translational medicine.

[130]  Levent Burak Kara,et al.  Cost Minimization in Metal Additive Manufacturing Using Concurrent Structure and Process Optimization , 2017, DAC 2017.

[131]  M. Bahraminasab,et al.  Al2O3-Ti functionally graded material prepared by spark plasma sintering for orthopaedic applications. , 2017, Journal of the mechanical behavior of biomedical materials.

[132]  L. Deiner,et al.  Inkjet and Aerosol Jet Printing of Electrochemical Devices for Energy Conversion and Storage   , 2017 .

[133]  Travis J Klein,et al.  Challenges in engineering large customized bone constructs , 2017, Biotechnology and bioengineering.

[134]  Fabien Guillemot,et al.  In situ printing of mesenchymal stromal cells, by laser-assisted bioprinting, for in vivo bone regeneration applications , 2017, Scientific Reports.

[135]  F. Farahmand,et al.  State of the art review on design and manufacture of hybrid biomedical materials: Hip and knee prostheses , 2017, Proceedings of the Institution of Mechanical Engineers. Part H, Journal of engineering in medicine.

[136]  Mei Wei,et al.  Development of a novel alginate-polyvinyl alcohol-hydroxyapatite hydrogel for 3D bioprinting bone tissue engineered scaffolds. , 2017, Journal of biomedical materials research. Part A.

[137]  Lars-Erik Rännar,et al.  Micro- to Macroroughness of Additively Manufactured Titanium Implants in Terms of Coagulation and Contact Activation. , 2017, The International journal of oral & maxillofacial implants.

[138]  K. Balasubramanian,et al.  Optimizing inkjet printing process to fabricate thick ceramic coatings , 2017 .

[139]  Xiongsheng Chen,et al.  Rapid prototyping technology and its application in bone tissue engineering , 2017, Journal of Zhejiang University-SCIENCE B.

[140]  R. Magin,et al.  Magnetic Resonance Imaging in Tissue Engineering , 2017 .

[141]  Soodabeh Davaran,et al.  Biodegradable and biocompatible polymers for tissue engineering application: a review , 2017, Artificial cells, nanomedicine, and biotechnology.

[142]  J. Kubásek,et al.  3D printed porous stainless steel for potential use in medicine , 2017 .

[143]  Peter Borgesen,et al.  Computational Fluid Dynamics Modeling and Online Monitoring of Aerosol Jet Printing Process , 2017 .

[144]  E. Davoodi,et al.  Predicting permeability of regular tissue engineering scaffolds: scaling analysis of pore architecture, scaffold length, and fluid flow rate effects , 2017, Computer methods in biomechanics and biomedical engineering.

[145]  Tarun Bhardwaj,et al.  Finite element modeling and analysis of implant scaffolds , 2017, 2017 International Conference on Advances in Mechanical, Industrial, Automation and Management Systems (AMIAMS).

[146]  Hyeong-Jin Lee,et al.  Recent cell printing systems for tissue engineering , 2017, International journal of bioprinting.

[147]  J. Heitz,et al.  Bone‐forming cells with pronounced spread into the third dimension in polymer scaffolds fabricated by two‐photon polymerization , 2016, Journal of biomedical materials research. Part A.

[148]  Shiwei Zhou,et al.  Computational design for scaffold tissue engineering , 2017 .

[149]  Brent Stucker,et al.  Simulating Melt Pool Shape and Lack of Fusion Porosity for Selective Laser Melting of Cobalt Chromium Components , 2017 .

[150]  Andrea Zocca,et al.  LSD-based 3D printing of alumina ceramics , 2017 .

[151]  G. Pazour,et al.  Ror2 signaling regulates Golgi structure and transport through IFT20 for tumor invasiveness , 2017, Scientific Reports.

[152]  Manoj Gupta,et al.  Selective Laser Melting of Magnesium and Magnesium Alloy Powders: A Review , 2016 .

[153]  W. Grayson,et al.  Three-Dimensional Printing Approaches for the Treatment of Critical-Sized Bone Defects , 2016 .

[154]  R. Gandhinathan,et al.  Design, analysis and fabrication of polyamide/ hydroxyapatite porous structured scaffold using selective laser sintering method for bio-medical applications , 2016 .

[155]  Marco A. Velasco,et al.  Geometric and mechanical properties evaluation of scaffolds for bone tissue applications designing by a reaction-diffusion models and manufactured with a material jetting system , 2016, J. Comput. Des. Eng..

[156]  Christopher B. Williams,et al.  Exploring variability of orientation and aging effects in material properties of multi-material jetting parts , 2016 .

[157]  D. Kelly,et al.  3D Bioprinting of Developmentally Inspired Templates for Whole Bone Organ Engineering , 2016, Advanced healthcare materials.

[158]  F. Senatov,et al.  Low-cycle fatigue behavior of 3d-printed PLA-based porous scaffolds , 2016 .

[159]  Pulak M. Pandey,et al.  Fabrication of three dimensional open porous regular structure of PA-2200 for enhanced strength of scaffold using selective laser sintering , 2016 .

[160]  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.

[161]  Sidra Waheed,et al.  3D printed microfluidic devices: enablers and barriers. , 2016, Lab on a chip.

[162]  Jaehyung Ju,et al.  Indirect Fabrication of Lattice Metals with Thin Sections Using Centrifugal Casting. , 2016, Journal of visualized experiments : JoVE.

[163]  I. Gerges,et al.  Creep-resistant dextran-based polyurethane foam as a candidate scaffold for bone tissue engineering: Synthesis, chemico-physical characterization, and in vitro and in vivo biocompatibility , 2016 .

[164]  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.

[165]  D. Pasini,et al.  High-strength porous biomaterials for bone replacement: A strategy to assess the interplay between cell morphology, mechanical properties, bone ingrowth and manufacturing constraints. , 2016, Acta biomaterialia.

[166]  D. Berlin,et al.  LSD-based 3D printing of alumina ceramics , 2016 .

[167]  Xue Xing,et al.  Design of the Artificial Bone Scaffolds Based on the Multi-field Coupling Model☆ , 2016 .

[168]  Ibrahim T. Ozbolat,et al.  Current advances and future perspectives in extrusion-based bioprinting. , 2016, Biomaterials.

[169]  V. Barron,et al.  Evaluation of the Early In Vivo Response of a Functionally Graded Macroporous Scaffold in an Osteochondral Defect in a Rabbit Model , 2016, Annals of Biomedical Engineering.

[170]  Chee Kai Chua,et al.  Design and 3D Printing of Scaffolds and Tissues , 2015 .

[171]  S M Giannitelli,et al.  Combined additive manufacturing approaches in tissue engineering. , 2015, Acta biomaterialia.

[172]  A. Shavandi,et al.  Bio-mimetic composite scaffold from mussel shells, squid pen and crab chitosan for bone tissue engineering. , 2015, International journal of biological macromolecules.

[173]  Allan Hanbury,et al.  Metrics for evaluating 3D medical image segmentation: analysis, selection, and tool , 2015, BMC Medical Imaging.

[174]  Anthony Atala,et al.  Essentials of 3D Biofabrication and Translation , 2015 .

[175]  Ali Jahan,et al.  Multicriteria Decision Analysis in Improving Quality of Design in Femoral Component of Knee Prostheses: Influence of Interface Geometry and Material , 2015 .

[176]  Samantha J. Paulsen,et al.  Tissue vascularization through 3D printing: Will technology bring us flow? , 2015, Developmental dynamics : an official publication of the American Association of Anatomists.

[177]  Noordin Mohd Yusof,et al.  Application of response surface methodology in optimization of electrospinning process to fabricate (ferrofluid/polyvinyl alcohol) magnetic nanofibers. , 2015, Materials science & engineering. C, Materials for biological applications.

[178]  Aleksandr Ovsianikov,et al.  Laser 3D Printing with Sub‐Microscale Resolution of Porous Elastomeric Scaffolds for Supporting Human Bone Stem Cells , 2015, Advanced healthcare materials.

[179]  Suman Das,et al.  3D printing of biomaterials , 2015 .

[180]  P E McHugh,et al.  Improving the finite element model accuracy of tissue engineering scaffolds produced by selective laser sintering , 2015, Journal of Materials Science: Materials in Medicine.

[181]  A. Haq,et al.  Characterization and development of polycaprolactone (PCL)/montmorillonite (MMT)/hydroxapaptite (HA) nanocomposites for fused deposition modelling (FDM) process , 2015 .

[182]  Rashia Begum Finite Element Analysis in Additive Manufactured Customised Bone Scaffold , 2015 .

[183]  Chee Kai Chua,et al.  Bioprinting: Principles and Applications , 2015 .

[184]  B. Torries,et al.  Fatigue Behaviour of Additively Manufactured Ti-6Al-4V , 2015 .

[185]  Lawrence E Murr,et al.  Metallurgy of additive manufacturing: Examples from electron beam melting , 2015 .

[186]  Dong-Woo Cho,et al.  Chapter 7 – Extrusion Bioprinting , 2015 .

[187]  G. Arumaikkannu,et al.  Finite Element Analysis in Additive Manufactured Customised Bone Scaffold , 2015 .

[188]  S. Licoccia,et al.  A primer of statistical methods for correlating parameters and properties of electrospun poly(L-lactide) scaffolds for tissue engineering--PART 1: design of experiments. , 2015, Journal of biomedical materials research. Part A.

[189]  A. Atala,et al.  Biomaterials for Integration with 3-D Bioprinting , 2015, Annals of Biomedical Engineering.

[190]  K. Sugioka,et al.  Femtosecond laser three-dimensional micro- and nanofabrication , 2014 .

[191]  Daniel Danielsson,et al.  Rapid prototyped patient specific implants for reconstruction of orbital wall defects. , 2014, Journal of cranio-maxillo-facial surgery : official publication of the European Association for Cranio-Maxillo-Facial Surgery.

[192]  S. Singamneni,et al.  Selective laser sintering of polymer biocomposites based on polymethyl methacrylate , 2014 .

[193]  Jan Wieding,et al.  Numerical optimization of open-porous bone scaffold structures to match the elastic properties of human cortical bone. , 2014, Journal of the mechanical behavior of biomedical materials.

[194]  Robert Langer,et al.  A Perspective on the Clinical Translation of Scaffolds for Tissue Engineering , 2014, Annals of Biomedical Engineering.

[195]  Farzam Farahmand,et al.  On the influence of shape and material used for the femoral component pegs in knee prostheses for reducing the problem of aseptic loosening , 2014 .

[196]  Farzam Farahmand,et al.  Multi-objective design optimization of functionally graded material for the femoral component of a total knee replacement , 2014 .

[197]  E. Jabbari Bioinspired Nanomaterials for Bone Regeneration , 2014 .

[198]  P. Dubruel,et al.  The 3D printing of gelatin methacrylamide cell-laden tissue-engineered constructs with high cell viability. , 2014, Biomaterials.

[199]  G. Arumaikkannu,et al.  Influence of Process Parameters on Surface Finish in Customized Bone Implant Using Selective Laser Sintering , 2013 .

[200]  Farzam Farahmand,et al.  Material tailoring of the femoral component in a total knee replacement to reduce the problem of aseptic loosening , 2013 .

[201]  Ali Jahan,et al.  Using Design of Experiments Methods for Assessing Peak Contact Pressure to Material Properties of Soft Tissue in Human Knee , 2013, Journal of medical engineering.

[202]  Jing Lim,et al.  Review: development of clinically relevant scaffolds for vascularised bone tissue engineering. , 2013, Biotechnology advances.

[203]  Cleo Choong,et al.  Three-dimensional scaffolds for tissue engineering applications: role of porosity and pore size. , 2013, Tissue engineering. Part B, Reviews.

[204]  María Vallet-Regí,et al.  Bioactive ceramics: from bone grafts to tissue engineering , 2013 .

[205]  L. Francis,et al.  Optimization of aerosol jet printing for high-resolution, high-aspect ratio silver lines. , 2013, ACS applied materials & interfaces.

[206]  D. Grijpma,et al.  Preparation of designed poly(D,L-lactide)/nanosized hydroxyapatite composite structures by stereolithography. , 2013, Acta biomaterialia.

[207]  Farzam Farahmand,et al.  Aseptic loosening of femoral components - materials engineering and design considerations , 2013 .

[208]  John J. Vericella,et al.  High‐Throughput Printing via Microvascular Multinozzle Arrays , 2013, Advanced materials.

[209]  Y. Liao,et al.  Selective Laser Sintering of Bio-Metal Scaffold , 2013 .

[210]  Muhammad Ali,et al.  Laser-Assisted Bioprinting for Tissue Engineering , 2013 .

[211]  Jorge Vicente Lopes da Silva,et al.  Effect of process parameters on the properties of selective laser sintered Poly(3-hydroxybutyrate) scaffolds for bone tissue engineering , 2012 .

[212]  Dominik Rietzel,et al.  Suitability of PLA/TCP for fused deposition modeling , 2012 .

[213]  Shaun Eshraghi,et al.  Micromechanical finite-element modeling and experimental characterization of the compressive mechanical properties of polycaprolactone-hydroxyapatite composite scaffolds prepared by selective laser sintering for bone tissue engineering. , 2012, Acta biomaterialia.

[214]  H Van Oosterwyck,et al.  The effect of pore geometry on the in vitro biological behavior of human periosteum-derived cells seeded on selective laser-melted Ti6Al4V bone scaffolds. , 2012, Acta biomaterialia.

[215]  F. Caiazzo,et al.  Manufacturing of Porous Biomaterials for Dental Implant Applications through Selective Laser Melting , 2012 .

[216]  Mika Salmi,et al.  Patient‐specific reconstruction with 3D modeling and DMLS additive manufacturing , 2012 .

[217]  H Van Oosterwyck,et al.  Prediction of permeability of regular scaffolds for skeletal tissue engineering: a combined computational and experimental study. , 2012, Acta biomaterialia.

[218]  Zhongmin Jin,et al.  Fabrication of a bio‐inspired beta‐Tricalcium phosphate/collagen scaffold based on ceramic stereolithography and gel casting for osteochondral tissue engineering , 2012 .

[219]  Heinz-Otto Peitgen,et al.  Medical image analysis , 1999, Medical Image Anal..

[220]  Anthony Atala,et al.  DROP-ON-DEMAND INKJET BIOPRINTING: A PRIMER ∗ , 2011 .

[221]  Shiwei Zhou,et al.  Microstructure design of biodegradable scaffold and its effect on tissue regeneration. , 2011, Biomaterials.

[222]  M. Mozafari,et al.  Preparation of laminated poly(ε-caprolactone)-gelatin-hydroxyapatite nanocomposite scaffold bioengineered via compound techniques for bone substitution , 2011, Biomatter.

[223]  Joerg Franke,et al.  Aerosol Jet printing on rapid prototyping materials for fine pitch electronic applications , 2011, 2011 IEEE 61st Electronic Components and Technology Conference (ECTC).

[224]  M. Kellomäki,et al.  Investigation of the optimal processing parameters for picosecond laser-induced microfabrication of a polymer–ceramic hybrid material , 2011 .

[225]  H. Fischer,et al.  Scaffolds for bone healing: concepts, materials and evidence. , 2011, Injury.

[226]  Robert C. Breithaupt,et al.  The influence of stereolithographic scaffold architecture and composition on osteogenic signal expression with rat bone marrow stromal cells. , 2011, Biomaterials.

[227]  Thomas J. Webster,et al.  Enhanced biological and mechanical properties of well-dispersed nanophase ceramics in polymer composites: From 2D to 3D printed structures , 2011 .

[228]  N. Sugano,et al.  Gender differences in 3D morphology and bony impingement of human hips , 2011, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.

[229]  Jochen Eulert,et al.  Custom-made composite scaffolds for segmental defect repair in long bones , 2011, International Orthopaedics.

[230]  D. Kalyon,et al.  Viscoelastic and biomechanical properties of osteochondral tissue constructs generated from graded polycaprolactone and beta-tricalcium phosphate composites. , 2010, Journal of biomechanical engineering.

[231]  Alok Sutradhar,et al.  Topological optimization for designing patient-specific large craniofacial segmental bone replacements , 2010, Proceedings of the National Academy of Sciences.

[232]  David Dean,et al.  Stereolithographic bone scaffold design parameters: osteogenic differentiation and signal expression. , 2010, Tissue engineering. Part B, Reviews.

[233]  Qing Li,et al.  On stiffness of scaffolds for bone tissue engineering-a numerical study. , 2010, Journal of biomechanics.

[234]  S. Hollister,et al.  Topology optimization of three dimensional tissue engineering scaffold architectures for prescribed bulk modulus and diffusivity , 2010, Structural and multidisciplinary optimization : journal of the International Society for Structural and Multidisciplinary Optimization.

[235]  Vladimir Mironov,et al.  Towards organ printing: engineering an intra-organ branched vascular tree , 2010, Expert opinion on biological therapy.

[236]  Fan Wu,et al.  Hierarchically microporous/macroporous scaffold of magnesium-calcium phosphate for bone tissue regeneration. , 2010, Biomaterials.

[237]  Adir Cohen,et al.  Mandibular reconstruction using stereolithographic 3-dimensional printing modeling technology. , 2009, Oral surgery, oral medicine, oral pathology, oral radiology, and endodontics.

[238]  Panos S. Shiakolas,et al.  Process Sensitivity Analysis and Resolution Prediction for the Two Photon Polymerization of Micro/Nano Structures , 2009 .

[239]  David F. Williams On the nature of biomaterials. , 2009, Biomaterials.

[240]  Josep A Planell,et al.  Computational modelling of the mechanical environment of osteogenesis within a polylactic acid-calcium phosphate glass scaffold. , 2009, Biomaterials.

[241]  Y. Zhang,et al.  Rapid manufacturing of bioceramic/polymer composite implants by selective laser sintering , 2009, Int. J. Comput. Appl. Technol..

[242]  Dong-Woo Cho,et al.  The optimization of hybrid scaffold fabrication process in precision deposition system using design of experiments , 2009 .

[243]  Christian Jungreuthmayer,et al.  A comparative study of shear stresses in collagen-glycosaminoglycan and calcium phosphate scaffolds in bone tissue-engineering bioreactors. , 2009, Tissue engineering. Part A.

[244]  Jiake Xu,et al.  Scaffolds for tendon and ligament repair: review of the efficacy of commercial products , 2009, Expert review of medical devices.

[245]  K. Wissenbach,et al.  Manufacturing of bone substitute implants using Selective Laser Melting , 2009 .

[246]  Jake E. Barralet,et al.  3D Powder Printing of β‐Tricalcium Phosphate Ceramics Using Different Strategies , 2008 .

[247]  W. Yeong,et al.  Engineering functionally graded tissue engineering scaffolds. , 2008, Journal of the mechanical behavior of biomedical materials.

[248]  Chee Kai Chua,et al.  Improved biocomposite development of poly(vinyl alcohol) and hydroxyapatite for tissue engineering scaffold fabrication using selective laser sintering , 2008, Journal of materials science. Materials in medicine.

[249]  Amit Bandyopadhyay,et al.  Laser processing of bioactive tricalcium phosphate coating on titanium for load-bearing implants. , 2008, Acta biomaterialia.

[250]  B Jaramaz,et al.  Variations in acetabular anatomy with reference to total hip replacement. , 2008, The Journal of bone and joint surgery. British volume.

[251]  Wei Sun,et al.  Effects of dispensing pressure and nozzle diameter on cell survival from solid freeform fabrication-based direct cell writing. , 2008, Tissue engineering. Part A.

[252]  K. Cleary,et al.  Image-guided interventions : technology and applications , 2008 .

[253]  B Vamsi Krishna,et al.  Processing and biocompatibility evaluation of laser processed porous titanium. , 2007, Acta biomaterialia.

[254]  C. Laurencin,et al.  Biodegradable polymers as biomaterials , 2007 .

[255]  Margam Chandrasekaran,et al.  Comparison of drying methods in the fabrication of collagen scaffold via indirect rapid prototyping. , 2007, Journal of biomedical materials research. Part B, Applied biomaterials.

[256]  Dong-Woo Cho,et al.  Development of a bone scaffold using HA nanopowder and micro-stereolithography technology , 2007 .

[257]  Filippo Causa,et al.  Bioactive scaffolds for bone and ligament tissue , 2007, Expert review of medical devices.

[258]  Michael J Yaszemski,et al.  Poly(propylene fumarate) bone tissue engineering scaffold fabrication using stereolithography: effects of resin formulations and laser parameters. , 2007, Biomacromolecules.

[259]  James K. Guest,et al.  Optimizing multifunctional materials: Design of microstructures for maximized stiffness and fluid permeability , 2006 .

[260]  Umber Cheema,et al.  Use of multiple unconfined compression for control of collagen gel scaffold density and mechanical properties. , 2006, Soft matter.

[261]  Chee Kai Chua,et al.  Indirect fabrication of collagen scaffold based on inkjet printing technique , 2006 .

[262]  T. Adachi,et al.  Framework for optimal design of porous scaffold microstructure by computational simulation of bone regeneration. , 2006, Biomaterials.

[263]  M. Klein,et al.  Comparative Study of patient individual implants from β‐tricalcium phosphate made by different techniques based on CT data , 2006 .

[264]  Vladimir Mironov,et al.  Review: bioprinting: a beginning. , 2006, Tissue engineering.

[265]  Suman Das,et al.  Selective laser sintering process optimization for layered manufacturing of CAPA® 6501 polycaprolactone bone tissue engineering scaffolds , 2006 .

[266]  I. Morita,et al.  Biocompatible inkjet printing technique for designed seeding of individual living cells. , 2005, Tissue engineering.

[267]  M. Mickle,et al.  Formulation and processing of novel conductive solution inks in continuous inkjet printing of 3-D electric circuits , 2005, IEEE Transactions on Electronics Packaging Manufacturing.

[268]  Binil Starly,et al.  Bio-CAD modeling and its applications in computer-aided tissue engineering , 2005, Comput. Aided Des..

[269]  P H Krebsbach,et al.  Engineering craniofacial scaffolds. , 2005, Orthodontics & craniofacial research.

[270]  S. Hollister Porous scaffold design for tissue engineering , 2005, Nature materials.

[271]  T. Boland,et al.  Inkjet printing of viable mammalian cells. , 2005, Biomaterials.

[272]  Stuart K Williams,et al.  Three-dimensional bioassembly tool for generating viable tissue-engineered constructs. , 2004, Tissue engineering.

[273]  Thomas Boland,et al.  Rapid prototyping of tissue-engineering constructs, using photopolymerizable hydrogels and stereolithography. , 2004, Tissue engineering.

[274]  Joachim Kohn,et al.  New approaches to biomaterials design , 2004, Nature materials.

[275]  Aleksandr Ovsianikov,et al.  Fabrication of woodpile structures by two-photon polymerization and investigation of their optical properties. , 2004, Optics express.

[276]  Joyce Y. Wong,et al.  Balance of chemistry, topography, and mechanics at the cell–biomaterial interface: Issues and challenges for assessing the role of substrate mechanics on cell response , 2004 .

[277]  N. Kikuchi,et al.  A novel method for biomaterial scaffold internal architecture design to match bone elastic properties with desired porosity. , 2004, Journal of biomechanics.

[278]  Debasish Dutta,et al.  A method for the design and fabrication of heterogeneous objects , 2003 .

[279]  Jeha Ryu,et al.  Contour-based algorithms for generating 3D CAD models from medical images , 2003 .

[280]  Vladimir Mironov,et al.  Organ printing: computer-aided jet-based 3D tissue engineering. , 2003, Trends in biotechnology.

[281]  Malcolm N. Cooke,et al.  Use of stereolithography to manufacture critical-sized 3D biodegradable scaffolds for bone ingrowth. , 2003, Journal of biomedical materials research. Part B, Applied biomaterials.

[282]  Hilde van der Togt,et al.  Publisher's Note , 2003, J. Netw. Comput. Appl..

[283]  J. Schrooten,et al.  Trabecular bone scaffolding using a biomimetic approach , 2002, Journal of materials science. Materials in medicine.

[284]  K. Leong,et al.  The design of scaffolds for use in tissue engineering. Part II. Rapid prototyping techniques. , 2002, Tissue engineering.

[285]  T. Rouxel,et al.  A synthetic aragonite-based bioceramic: influence of process parameters on porosity and compressive strength. , 2002, Biomaterials.

[286]  K. Leong,et al.  The design of scaffolds for use in tissue engineering. Part I. Traditional factors. , 2001, Tissue engineering.

[287]  T. Albrektsson,et al.  Osteoinduction, osteoconduction and osseointegration , 2001, European Spine Journal.

[288]  K. Burg,et al.  Biomaterial developments for bone tissue engineering. , 2000, Biomaterials.

[289]  Willi A. Kalender,et al.  Computed tomography : fundamentals, system technology, image quality, applications , 2000 .

[290]  James S. Duncan,et al.  Medical Image Analysis , 1999, IEEE Pulse.

[291]  Yuehuei H. An,et al.  Mechanical testing of bone and the bone-implant interface , 1999 .

[292]  VLADIMIR MIRONOV,et al.  Bioprinting : A Beginning , 2022 .