Continuum Modeling and Simulation in Bone Tissue Engineering
暂无分享,去创建一个
[1] J. A. Sanz-Herrera,et al. A mathematical approach to bone tissue engineering , 2009, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[2] Ibrahim T. Ozbolat,et al. Bioprinting Technology: A Current State-of-the-Art Review , 2014 .
[3] J. Vacanti,et al. Contractile cardiac grafts using a novel nanofibrous mesh. , 2004, Biomaterials.
[4] Michael Jaffe,et al. Piezoelectric materials for tissue regeneration: A review. , 2015, Acta biomaterialia.
[5] David J Mooney,et al. Engineering RGD nanopatterned hydrogels to control preosteoblast behavior: a combined computational and experimental approach. , 2007, Biomaterials.
[6] B. Fahlman,et al. In vitro and in vivo corrosion, mechanical properties and biocompatibility evaluation of MgF2-coated Mg-Zn-Zr alloy as cancellous screws. , 2017, Materials science & engineering. C, Materials for biological applications.
[7] J. A. Sanz-Herrera,et al. In silico design of magnesium implants: Macroscopic modeling. , 2018, Journal of the mechanical behavior of biomedical materials.
[8] S. Bryant,et al. Tuning tissue growth with scaffold degradation in enzyme-sensitive hydrogels: a mathematical model. , 2016, Soft matter.
[9] J. Feijen,et al. Preparation of degradable porous structures based on 1,3-trimethylene carbonate and D,L-lactide (co)polymers for heart tissue engineering. , 2003, Tissue engineering.
[10] V. Goldberg,et al. Heterotopic osteogenesis in porous ceramics induced by marrow cells , 1989, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[11] Cornelia Kasper,et al. Mechanical and flow characterization of Sponceram carriers: Evaluation by homogenization theory and experimental validation. , 2008, Journal of biomedical materials research. Part B, Applied biomaterials.
[12] S. Hollister,et al. Optimal design and fabrication of scaffolds to mimic tissue properties and satisfy biological constraints. , 2002, Biomaterials.
[13] A. Göpferich,et al. Polymer Bulk Erosion , 1997 .
[14] S J Hollister,et al. Trabecular surface remodeling simulation for cancellous bone using microstructural voxel finite element models. , 2001, Journal of biomechanical engineering.
[15] G. Kerckhofs,et al. Computational modelling of local calcium ions release from calcium phosphate-based scaffolds , 2016, Biomechanics and Modeling in Mechanobiology.
[16] Andreas Öchsner,et al. Permeability studies of artificial and natural cancellous bone structures. , 2013, Medical engineering & physics.
[17] Larry L. Hench,et al. Bonding mechanisms at the interface of ceramic prosthetic materials , 1971 .
[18] Vassilios I Sikavitsas,et al. Computational modeling of flow-induced shear stresses within 3D salt-leached porous scaffolds imaged via micro-CT. , 2010, Journal of biomechanics.
[19] J. A. Sanz-Herrera,et al. Model of dissolution in the framework of tissue engineering and drug delivery , 2018, Biomechanics and Modeling in Mechanobiology.
[20] Alexis M Pietak,et al. Magnesium and its alloys as orthopedic biomaterials: a review. , 2006, Biomaterials.
[21] H Van Oosterwyck,et al. Prediction of permeability of regular scaffolds for skeletal tissue engineering: a combined computational and experimental study. , 2012, Acta biomaterialia.
[22] M. Mastrogiacomo,et al. Tissue engineering of bone: search for a better scaffold. , 2005, Orthodontics & craniofacial research.
[23] Mauro Ferrari,et al. Shaping the micromechanical behavior of multi-phase composites for bone tissue engineering. , 2010, Acta biomaterialia.
[24] Aldo R Boccaccini,et al. 45S5 Bioglass-derived glass-ceramic scaffolds for bone tissue engineering. , 2006, Biomaterials.
[25] Colleen L Flanagan,et al. Bioresorbable scaffolds for bone tissue engineering: optimal design, fabrication, mechanical testing and scale-size effects analysis. , 2015, Medical engineering & physics.
[26] J. Podichetty,et al. Application of computational fluid dynamics in tissue engineering. , 2012, Journal of bioscience and bioengineering.
[27] Anthony J. Deegan,et al. Influence of Additive Manufactured Scaffold Architecture on the Distribution of Surface Strains and Fluid Flow Shear Stresses and Expected Osteochondral Cell Differentiation , 2017, Front. Bioeng. Biotechnol..
[28] L L Hench,et al. Direct chemical bond of bioactive glass-ceramic materials to bone and muscle. , 1973, Journal of biomedical materials research.
[29] J. Davies,et al. Use of a biomimetic strategy to engineer bone. , 2003, Journal of biomedical materials research. Part A.
[30] D. Hutmacher,et al. Scaffolds in tissue engineering bone and cartilage. , 2000, Biomaterials.
[31] G S Beaupré,et al. An approach for time‐dependent bone modeling and remodeling—theoretical development , 1990, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[32] Shiwei Zhou,et al. Mathematical modeling of degradation for bulk-erosive polymers: applications in tissue engineering scaffolds and drug delivery systems. , 2011, Acta biomaterialia.
[33] Kristina Shea,et al. Computationally designed lattices with tuned properties for tissue engineering using 3D printing , 2017, PloS one.
[34] A. Boccaccini,et al. Biodegradable and bioactive porous polymer/inorganic composite scaffolds for bone tissue engineering. , 2006, Biomaterials.
[35] Keekyoung Kim,et al. 3D bioprinting for engineering complex tissues. , 2016, Biotechnology advances.
[36] A R Boccaccini,et al. Development and in vitro characterisation of novel bioresorbable and bioactive composite materials based on polylactide foams and Bioglass for tissue engineering applications. , 2002, Biomaterials.
[37] Damien Lacroix,et al. Simulation of bone tissue formation within a porous scaffold under dynamic compression , 2010, Biomechanics and modeling in mechanobiology.
[38] P. Dubruel,et al. The 3D printing of gelatin methacrylamide cell-laden tissue-engineered constructs with high cell viability. , 2014, Biomaterials.
[39] J M García-Aznar,et al. On scaffold designing for bone regeneration: A computational multiscale approach. , 2009, Acta biomaterialia.
[40] J. Schrooten,et al. A three‐dimensional computational fluid dynamics model of shear stress distribution during neotissue growth in a perfusion bioreactor , 2015, Biotechnology and bioengineering.
[41] J M García-Aznar,et al. Scaffold microarchitecture determines internal bone directional growth structure: a numerical study. , 2010, Journal of biomechanics.
[42] Antonios G. Mikos,et al. Mineralized matrix deposition by marrow stromal osteoblasts in 3D perfusion culture increases with increasing fluid shear forces , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[43] P. Layrolle,et al. Macroporous biphasic calcium phosphate scaffold with high permeability/porosity ratio. , 2003, Tissue engineering.
[44] Antonios G Mikos,et al. Flow perfusion culture induces the osteoblastic differentiation of marrow stroma cell-scaffold constructs in the absence of dexamethasone. , 2005, Journal of biomedical materials research. Part A.
[45] Sara Checa,et al. Simulation of angiogenesis and cell differentiation in a CaP scaffold subjected to compressive strains using a lattice modeling approach. , 2010, Biomaterials.
[46] M. Fiorentino,et al. Optimal Load for Bone Tissue Scaffolds with an Assigned Geometry , 2018, International journal of medical sciences.
[47] D. Lacroix,et al. A dynamical study of the mechanical stimuli and tissue differentiation within a CaP scaffold based on micro-CT finite element models , 2011, Biomechanics and modeling in mechanobiology.
[48] Josep A Planell,et al. Computational modelling of the mechanical environment of osteogenesis within a polylactic acid-calcium phosphate glass scaffold. , 2009, Biomaterials.
[49] Jingzhe Pan,et al. A phenomenological model for the degradation of biodegradable polymers. , 2008, Biomaterials.
[50] S. Stanzl-Tschegg,et al. Bone-implant interface strength and osseointegration: Biodegradable magnesium alloy versus standard titanium control. , 2011, Acta biomaterialia.
[51] J. A. Sanz-Herrera,et al. Modelling bioactivity and degradation of bioactive glass based tissue engineering scaffolds , 2011 .
[52] Gordana Vunjak-Novakovic,et al. Perfusion improves tissue architecture of engineered cardiac muscle. , 2002, Tissue engineering.
[53] 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.
[54] Nicholas A Peppas,et al. Mathematical models in drug delivery: how modeling has shaped the way we design new drug delivery systems. , 2014, Journal of controlled release : official journal of the Controlled Release Society.
[55] A. Boccaccini,et al. Poly(D,L-lactic acid) coated 45S5 Bioglass-based scaffolds: processing and characterization. , 2006, Journal of biomedical materials research. Part A.
[56] Patrick J Prendergast,et al. Prediction of the optimal mechanical properties for a scaffold used in osteochondral defect repair. , 2006, Tissue engineering.
[57] P H Krebsbach,et al. Indirect solid free form fabrication of local and global porous, biomimetic and composite 3D polymer-ceramic scaffolds. , 2003, Biomaterials.
[58] Brian Derby,et al. Printing and Prototyping of Tissues and Scaffolds , 2012, Science.
[59] A. Weiland,et al. Foreign-body reaction and osteolysis induced by an intraosseous poly-L-lactic Acid suture anchor in the wrist: case report. , 2011, The Journal of hand surgery.
[60] A. Olivares,et al. Computational Methods in the Modeling of Scaffolds for Tissue Engineering , 2012 .
[61] L. Geris,et al. A computational model for cell/ECM growth on 3D surfaces using the level set method: a bone tissue engineering case study , 2014, Biomechanics and modeling in mechanobiology.
[62] Eric A Nauman,et al. Effect of porosity on the fluid flow characteristics and mechanical properties of tantalum scaffolds. , 2005, Journal of biomedical materials research. Part B, Applied biomaterials.
[63] F Peyrin,et al. Engineering of bone using bone marrow stromal cells and a silicon-stabilized tricalcium phosphate bioceramic: evidence for a coupling between bone formation and scaffold resorption. , 2007, Biomaterials.
[64] K. McCloskey,et al. Can shear stress direct stem cell fate? , 2009, Biotechnology progress.
[65] Y. Guyot,et al. Coupling curvature-dependent and shear stress-stimulated neotissue growth in dynamic bioreactor cultures: a 3D computational model of a complete scaffold , 2016, Biomechanics and modeling in mechanobiology.
[66] Qing Li,et al. On stiffness of scaffolds for bone tissue engineering-a numerical study. , 2010, Journal of biomechanics.
[67] Michael Jarcho,et al. Calcium phosphate ceramics as hard tissue prosthetics. , 1981, Clinical orthopaedics and related research.
[68] C. Doillon,et al. Computational modeling of adherent cell growth in a hollow-fiber membrane bioreactor for large-scale 3-D bone tissue engineering , 2012, Journal of Artificial Organs.
[69] R Z LeGeros,et al. Calcium Phosphate Materials in Restorative Dentistry: a Review , 1988, Advances in dental research.
[70] José Manuel García-Aznar,et al. Micro–macro numerical modelling of bone regeneration in tissue engineering , 2008 .
[71] C A Bassett,et al. Biologic significance of piezoelectricity , 1967, Calcified tissue research.
[72] C. Hellmich,et al. Micro-poro-elasticity of baghdadite-based bone tissue engineering scaffolds: a unifying approach based on ultrasonics, nanoindentation, and homogenization theory. , 2015, Materials science & engineering. C, Materials for biological applications.
[73] K. Hing. Bone repair in the twenty–first century: biology, chemistry or engineering? , 2004, Philosophical Transactions of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences.
[74] S. Low,et al. Bioactive ceramics for periodontal treatment: comparative studies in the Patus monkey. , 1992, Journal of applied biomaterials : an official journal of the Society for Biomaterials.
[75] W. L. Francis,et al. A multiscale modeling approach to scaffold design and property prediction. , 2010, Journal of the mechanical behavior of biomedical materials.
[76] D. Lacroix,et al. Micromechanical study of the load transfer in a polycaprolactone–collagen hybrid scaffold when subjected to unconfined and confined compression , 2017, Biomechanics and Modeling in Mechanobiology.
[77] E. Nauman,et al. Development and characterization of a porous poly(methyl methacrylate) scaffold with controllable modulus and permeability. , 2007, Journal of biomedical materials research. Part B, Applied biomaterials.
[78] E. Entcheva,et al. Electrospun fine-textured scaffolds for heart tissue constructs. , 2005, Biomaterials.
[79] Yong Woo Lee,et al. Effect of intermittent shear stress on mechanotransductive signaling and osteoblastic differentiation of bone marrow stromal cells. , 2008, Tissue engineering. Part A.
[80] J R King,et al. Multiphase modelling of cell behaviour on artificial scaffolds: effects of nutrient depletion and spatially nonuniform porosity. , 2007, Mathematical medicine and biology : a journal of the IMA.
[81] Manuela T. Raimondi,et al. A multiphysics 3D model of tissue growth under interstitial perfusion in a tissue-engineering bioreactor , 2013, Biomechanics and modeling in mechanobiology.
[82] O. Carpentier,et al. Numerical optimization of cell colonization modelling inside scaffold for perfusion bioreactor: A multiscale model. , 2018, Medical engineering & physics.
[83] P E McHugh,et al. A corrosion model for bioabsorbable metallic stents. , 2011, Acta biomaterialia.
[84] P. Eggli,et al. Porous hydroxyapatite and tricalcium phosphate cylinders with two different pore size ranges implanted in the cancellous bone of rabbits. A comparative histomorphometric and histologic study of bony ingrowth and implant substitution. , 1988, Clinical orthopaedics and related research.
[85] P J Prendergast,et al. Biophysical stimuli on cells during tissue differentiation at implant interfaces , 1997 .
[86] Christian Hellmich,et al. Mechanical behavior of hydroxyapatite biomaterials: an experimentally validated micromechanical model for elasticity and strength. , 2009, Journal of biomedical materials research. Part A.
[87] Peter X Ma,et al. Bone regeneration on computer-designed nano-fibrous scaffolds. , 2006, Biomaterials.
[88] Sara Checa,et al. Effect of cell seeding and mechanical loading on vascularization and tissue formation inside a scaffold: a mechano-biological model using a lattice approach to simulate cell activity. , 2010, Journal of biomechanics.
[89] H. Ohgushi,et al. Bonding osteogenesis in coralline hydroxyapatite combined with bone marrow cells. , 1991, Biomaterials.
[90] Sara Checa,et al. Corroboration of mechanobiological simulations of tissue differentiation in an in vivo bone chamber using a lattice‐modeling approach , 2009, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[91] J Malda,et al. Design criteria for a printed tissue engineering construct: a mathematical homogenization approach. , 2009, Journal of theoretical biology.
[92] Taijiro Sueda,et al. In vitro tissue engineering of a cardiac graft using a degradable scaffold with an extracellular matrix-like topography. , 2005, The Journal of thoracic and cardiovascular surgery.
[93] Franck J Vernerey,et al. Mathematical model of the role of degradation on matrix development in hydrogel scaffold , 2014, Biomechanics and modeling in mechanobiology.
[94] H. Ohgushi,et al. Osteogenic differentiation of cultured marrow stromal stem cells on the surface of bioactive glass ceramics. , 1996, Journal of biomedical materials research.
[95] Dietmar W Hutmacher,et al. Combined marrow stromal cell-sheet techniques and high-strength biodegradable composite scaffolds for engineered functional bone grafts. , 2007, Biomaterials.
[96] A. Olivares,et al. Finite element study of scaffold architecture design and culture conditions for tissue engineering. , 2009, Biomaterials.
[97] J. Schrooten,et al. Human periosteal‐derived cell expansion in a perfusion bioreactor system: proliferation, differentiation and extracellular matrix formation , 2017, Journal of tissue engineering and regenerative medicine.
[98] P. Uggowitzer,et al. Magnesium alloys for temporary implants in osteosynthesis: in vivo studies of their degradation and interaction with bone. , 2012, Acta biomaterialia.
[99] M. Sarntinoranont,et al. Magnesium as a biodegradable and bioabsorbable material for medical implants , 2009 .
[100] Josep A Planell,et al. Simulation of tissue differentiation in a scaffold as a function of porosity, Young's modulus and dissolution rate: application of mechanobiological models in tissue engineering. , 2007, Biomaterials.
[101] M. Strømme,et al. Finite element analysis of the release of slowly dissolving drugs from cylindrical matrix systems. , 2005, Journal of controlled release : official journal of the Controlled Release Society.
[102] Wei Li,et al. Design optimization of scaffold microstructures using wall shear stress criterion towards regulated flow-induced erosion. , 2011, Journal of biomechanical engineering.
[103] Vladimir Mironov,et al. Towards organ printing: engineering an intra-organ branched vascular tree , 2010, Expert opinion on biological therapy.
[104] Swee-Hin Teoh,et al. Review of vascularised bone tissue‐engineering strategies with a focus on co‐culture systems , 2015, Journal of tissue engineering and regenerative medicine.
[105] Aldo R Boccaccini,et al. Permeability evaluation of 45S5 Bioglass-based scaffolds for bone tissue engineering. , 2009, Journal of biomechanics.
[106] Wei Li,et al. A permeability measurement system for tissue engineering scaffolds , 2006 .
[107] Gordana Vunjak-Novakovic,et al. Effects of oxygen on engineered cardiac muscle. , 2002, Biotechnology and bioengineering.
[108] W. J. Hendrikson,et al. Modeling mechanical signals on the surface of µCT and CAD based rapid prototype scaffold models to predict (early stage) tissue development , 2014, Biotechnology and bioengineering.
[109] T. Adachi,et al. Framework for optimal design of porous scaffold microstructure by computational simulation of bone regeneration. , 2006, Biomaterials.
[110] M. Malvè,et al. Computational Methodology to Determine Fluid Related Parameters of Non Regular Three-Dimensional Scaffolds , 2013, Annals of Biomedical Engineering.
[111] H. Aoki,et al. Biocompatibility of apatite ceramics in mandibles. , 1979, Biomaterials, medical devices, and artificial organs.
[112] Keita Ito,et al. Flow rates in perfusion bioreactors to maximise mineralisation in bone tissue engineering in vitro. , 2018, Journal of biomechanics.
[113] Harmeet Singh,et al. Computational fluid dynamics for improved bioreactor design and 3D culture. , 2008, Trends in biotechnology.
[114] Greg Lemon,et al. Mathematical modelling of engineered tissue growth using a multiphase porous flow mixture theory , 2006, Journal of mathematical biology.
[115] Pascal Swider,et al. Use of high-resolution MRI for investigation of fluid flow and global permeability in a material with interconnected porosity. , 2007, Journal of biomechanics.
[116] Xiongbiao Chen,et al. Effect of needle geometry on flow rate and cell damage in the dispensing‐based biofabrication process , 2011, Biotechnology progress.
[117] P E McHugh,et al. A physical corrosion model for bioabsorbable metal stents. , 2014, Acta biomaterialia.
[118] Anthony Atala,et al. 3D bioprinting of tissues and organs , 2014, Nature Biotechnology.
[119] L. Geris,et al. Mathematical modelling of the degradation behaviour of biodegradable metals , 2016, Biomechanics and Modeling in Mechanobiology.
[120] Paolo A. Netti,et al. The performance of poly-ε-caprolactone scaffolds in a rabbit femur model with and without autologous stromal cells and BMP4 , 2007 .
[121] J. Davies,et al. In Vivo Bone Engineering in a Rabbit Femur , 2003, The Journal of craniofacial surgery.
[122] Jingzhe Pan,et al. A model for simultaneous crystallisation and biodegradation of biodegradable polymers. , 2009, Biomaterials.
[123] Eric Li,et al. Characterization of tissue scaffolds for time-dependent biotransport criteria – a novel computational procedure , 2016, Computer methods in biomechanics and biomedical engineering.
[124] Md. Shakhawath Hossain,et al. Investigation of the in vitro culture process for skeletal-tissue-engineered constructs using computational fluid dynamics and experimental methods. , 2012, Journal of biomechanical engineering.
[125] S Tamai,et al. Marrow cell induced osteogenesis in porous hydroxyapatite and tricalcium phosphate: a comparative histomorphometric study of ectopic bone formation. , 1990, Journal of biomedical materials research.
[126] Stefan Scheiner,et al. Micromechanics of bone tissue-engineering scaffolds, based on resolution error-cleared computer tomography. , 2009, Biomaterials.