Rational design and fabrication of multiphasic soft network composites for tis- sue engineering articular cartilage: a numerical model-based approach
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Nathan J. Castro | Felix M. Wunner | E. Rank | D. Hutmacher | T. Klein | O. Bas | I. Catelas | G. Vozzi | E. De‐Juan‐Pardo | C. Meinert | Davide D’Angella | Sara Lucarotti
[1] X. Brannmjk. functionalization , 2020, Catalysis from A to Z.
[2] Onur Bas,et al. Melt Electrospinning Writing of Three-dimensional Poly(ε-caprolactone) Scaffolds with Controllable Morphologies for Tissue Engineering Applications. , 2017, Journal of visualized experiments : JoVE.
[3] Alessandro Reali,et al. An Integrated Design, Material, and Fabrication Platform for Engineering Biomechanically and Biologically Functional Soft Tissues. , 2017, ACS applied materials & interfaces.
[4] Amir A. Zadpoor,et al. Rational design of soft mechanical metamaterials: Independent tailoring of elastic properties with randomness , 2017 .
[5] Marc A. Meyers,et al. Functional gradients and heterogeneities in biological materials: Design principles, functions, and bioinspired applications , 2017 .
[6] Dietmar W. Hutmacher,et al. Via precise interface engineering towards bioinspired composites with improved 3D printing processability and mechanical properties. , 2017, Journal of materials chemistry. B.
[7] Ernst Rank,et al. Biofabricated soft network composites for cartilage tissue engineering , 2017, Biofabrication.
[8] Rui L Reis,et al. Structural monitoring and modeling of the mechanical deformation of three-dimensional printed poly(ε-caprolactone) scaffolds , 2017, Biofabrication.
[9] Amir A. Zadpoor,et al. Biomaterials and Tissue Biomechanics: A Match Made in Heaven? , 2017, Materials.
[10] Jiankang He,et al. Microscale electrohydrodynamic printing of biomimetic PCL/nHA composite scaffolds for bone tissue engineering , 2016 .
[11] Shantha Amrith,et al. Use of bioresorbable implants for orbital fracture reconstruction , 2016, British Journal of Ophthalmology.
[12] Jianhua Zhang,et al. Composites of electrospun-fibers and hydrogels: A potential solution to current challenges in biological and biomedical field. , 2016, Journal of biomedical materials research. Part B, Applied biomaterials.
[13] Ali Khademhosseini,et al. Functionalization, preparation and use of cell-laden gelatin methacryloyl–based hydrogels as modular tissue culture platforms , 2016, Nature Protocols.
[14] James C. Weaver,et al. Hydrogels with tunable stress relaxation regulate stem cell fate and activity , 2015, Nature materials.
[15] Dietmar W. Hutmacher,et al. Enhancing structural integrity of hydrogels by using highly organised melt electrospun fibre constructs , 2015 .
[16] Jos Malda,et al. Reinforcement of hydrogels using three-dimensionally printed microfibres , 2015, Nature Communications.
[17] Dietmar W. Hutmacher,et al. Hyaluronic Acid Enhances the Mechanical Properties of Tissue-Engineered Cartilage Constructs , 2014, PloS one.
[18] M. Oyen,et al. Nanofibrous hydrogel composites as mechanically robust tissue engineering scaffolds. , 2014, Trends in biotechnology.
[19] P. R. van Weeren,et al. Gelatin-methacrylamide hydrogels as potential biomaterials for fabrication of tissue-engineered cartilage constructs. , 2013, Macromolecular bioscience.
[20] Hanna Isaksson,et al. A Review of the Combination of Experimental Measurements and Fibril-Reinforced Modeling for Investigation of Articular Cartilage and Chondrocyte Response to Loading , 2013, Comput. Math. Methods Medicine.
[21] Lesley-Anne Turner,et al. State of the art composites comprising electrospun fibres coupled with hydrogels: a review. , 2013, Nanomedicine : nanotechnology, biology, and medicine.
[22] Ali Vahdati,et al. Finite element study of a tissue-engineered cartilage transplant in human tibiofemoral joint , 2012, Computer methods in biomechanics and biomedical engineering.
[23] Anubhav Jain,et al. From the computer to the laboratory: materials discovery and design using first-principles calculations , 2012, Journal of Materials Science.
[24] Dietmar W Hutmacher,et al. Direct Writing By Way of Melt Electrospinning , 2011, Advanced materials.
[25] José Becerra,et al. Articular cartilage: structure and regeneration. , 2010, Tissue engineering. Part B, Reviews.
[26] A. Khademhosseini,et al. Cell-laden microengineered gelatin methacrylate hydrogels. , 2010, Biomaterials.
[27] Kristi S Anseth,et al. Photoinitiated polymerization of PEG-diacrylate with lithium phenyl-2,4,6-trimethylbenzoylphosphinate: polymerization rate and cytocompatibility. , 2009, Biomaterials.
[28] David Moratal,et al. Microcomputed tomography and microfinite element modeling for evaluating polymer scaffolds architecture and their mechanical properties. , 2009, Journal of biomedical materials research. Part B, Applied biomaterials.
[29] Josep A Planell,et al. Computational modelling of the mechanical environment of osteogenesis within a polylactic acid-calcium phosphate glass scaffold. , 2009, Biomaterials.
[30] D. Hutmacher,et al. The return of a forgotten polymer : Polycaprolactone in the 21st century , 2009 .
[31] Scott J. Hollister,et al. Computational design of tissue engineering scaffolds , 2007 .
[32] E. Rank,et al. High order finite elements for shells , 2005 .
[33] M. Eberhart,et al. Looking for design in materials design , 2004, Nature materials.
[34] D. Carter,et al. Articular cartilage functional histomorphology and mechanobiology: a research perspective. , 2003, Bone.
[35] E B Hunziker,et al. Mechanical anisotropy of the human knee articular cartilage in compression , 2003, Proceedings of the Institution of Mechanical Engineers. Part H, Journal of engineering in medicine.
[36] S. Tsai,et al. Composite Materials: Design and Applications , 2002 .
[37] X. Edward Guo,et al. Mechano-electrochemical properties of articular cartilage: their inhomogeneities and anisotropies. , 2002, Annual review of biomedical engineering.
[38] S. Ramakrishna,et al. Biomedical applications of polymer-composite materials: a review , 2001 .
[39] Ernst Rank,et al. The p‐version of the finite element method for domains with corners and for infinite domains , 1990 .
[40] V. Mow,et al. Biphasic creep and stress relaxation of articular cartilage in compression? Theory and experiments. , 1980, Journal of biomechanical engineering.
[41] M. Biot. General Theory of Three‐Dimensional Consolidation , 1941 .