Cell-Laden Biomimetically Mineralized Shark-Skin-Collagen-Based 3D Printed Hydrogels for the Engineering of Hard Tissues.
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Rui L Reis | Tiago H Silva | Carmen G Sotelo | R. Reis | R. Pérez-Martín | C. F. Marques | T. Silva | C. G. Sotelo | Gabriela S Diogo | Catarina F Marques | Ricardo I Pérez-Martín | Rogério P Pirraco | G. S. Diogo | T. H. Silva | R. Pirraco
[1] Kaili Lin,et al. The development of collagen based composite scaffolds for bone regeneration , 2017, Bioactive materials.
[2] Steve Weiner,et al. Bone hierarchical structure in three dimensions. , 2014, Acta biomaterialia.
[3] P. Gatenholm,et al. 3D Bioprinting Human Chondrocytes with Nanocellulose-Alginate Bioink for Cartilage Tissue Engineering Applications. , 2015, Biomacromolecules.
[4] Hyeongjin Lee,et al. A New Approach for Fabricating Collagen/ECM‐Based Bioinks Using Preosteoblasts and Human Adipose Stem Cells , 2015, Advanced healthcare materials.
[5] Wenmiao Shu,et al. 3D bioactive composite scaffolds for bone tissue engineering , 2017, Bioactive materials.
[6] Jiao Sun,et al. Potential application of hydrolyzed fish collagen for inducing the multidirectional differentiation of rat bone marrow mesenchymal stem cells. , 2014, Biomacromolecules.
[7] R. Reis,et al. Marine Collagen/Apatite Composite Scaffolds Envisaging Hard Tissue Applications , 2018, Marine drugs.
[8] A. Sionkowska,et al. Characterization of collagen/hydroxyapatite composite sponges as a potential bone substitute. , 2010, International journal of biological macromolecules.
[9] Jingyi Zhang,et al. Rheological, biocompatibility and osteogenesis assessment of fish collagen scaffold for bone tissue engineering. , 2016, International journal of biological macromolecules.
[10] Anja Lode,et al. Alginate/nanohydroxyapatite scaffolds with designed core/shell structures fabricated by 3D plotting and in situ mineralization for bone tissue engineering. , 2015, ACS applied materials & interfaces.
[11] A Tampieri,et al. HA/alginate hybrid composites prepared through bio-inspired nucleation. , 2005, Acta biomaterialia.
[12] R. Reis,et al. Cosmetic Potential of Marine Fish Skin Collagen , 2017 .
[13] Peter X Ma,et al. Biomimetic materials for tissue engineering. , 2008, Advanced drug delivery reviews.
[14] Se-Kwon Kim,et al. Bioactive compounds from marine processing byproducts – A review , 2006 .
[15] S. Van Vlierberghe,et al. Bioink properties before, during and after 3D bioprinting , 2016, Biofabrication.
[16] Xingchen Yang,et al. Collagen-alginate as bioink for three-dimensional (3D) cell printing based cartilage tissue engineering. , 2018, Materials science & engineering. C, Materials for biological applications.
[17] Horst Fischer,et al. Bioprinting Organotypic Hydrogels with Improved Mesenchymal Stem Cell Remodeling and Mineralization Properties for Bone Tissue Engineering , 2016, Advanced healthcare materials.
[18] J Malda,et al. Assessing bioink shape fidelity to aid material development in 3D bioprinting , 2017, Biofabrication.
[19] R. L. Reis,et al. Collagen-based bioinks for hard tissue engineering applications: a comprehensive review , 2019, Journal of Materials Science: Materials in Medicine.
[20] J. W. Lee,et al. Evaluation of Differentiated Bone Cells Proliferation by Blue Shark Skin Collagen via Biochemical for Bone Tissue Engineering , 2018, Marine drugs.
[21] Wei Sun,et al. Effect of bioink properties on printability and cell viability for 3D bioplotting of embryonic stem cells , 2016, Biofabrication.
[22] Dong-Woo Cho,et al. Bioprintable, cell-laden silk fibroin-gelatin hydrogel supporting multilineage differentiation of stem cells for fabrication of three-dimensional tissue constructs. , 2015, Acta biomaterialia.
[23] Hyeongjin Lee,et al. Strategy to Achieve Highly Porous/Biocompatible Macroscale Cell Blocks, Using a Collagen/Genipin-bioink and an Optimal 3D Printing Process. , 2016, ACS applied materials & interfaces.
[24] D. Kohn,et al. Nanostructural analysis of trabecular bone , 2009, Journal of materials science. Materials in medicine.
[25] M. Villa,et al. A Biomimetic Collagen-Apatite Scaffold with a Multi-Level Lamellar Structure for Bone Tissue Engineering. , 2014, Journal of materials chemistry. B.
[26] M. Gelinsky,et al. Biphasic Scaffolds from Marine Collagens for Regeneration of Osteochondral Defects , 2018, Marine drugs.
[27] Boris N. Chichkov,et al. The selective role of ECM components on cell adhesion, morphology, proliferation and communication in vitro. , 2013, Experimental cell research.
[28] R. Reis,et al. marine drugs , 2022 .
[29] Jun Fan,et al. 3D Bioprinting Technologies for Hard Tissue and Organ Engineering , 2016, Materials.
[30] M. Gelinsky,et al. Biomimetically mineralized salmon collagen scaffolds for application in bone tissue engineering. , 2012, Biomacromolecules.
[31] Yoshihiko Hayashi,et al. Potency of Fish Collagen as a Scaffold for Regenerative Medicine , 2014, BioMed research international.
[32] E. Sassoni. Hydroxyapatite and Other Calcium Phosphates for the Conservation of Cultural Heritage: A Review , 2018, Materials.
[33] R. Pérez-Martín,et al. Characterization of Collagen from Different Discarded Fish Species of the West Coast of the Iberian Peninsula , 2016 .
[34] R. Reis,et al. Porous hydrogels from shark skin collagen crosslinked under dense carbon dioxide atmosphere. , 2013, Macromolecular bioscience.
[35] Johnson H. Y. Chung,et al. Bio-ink properties and printability for extrusion printing living cells. , 2013, Biomaterials science.
[36] M. Gelinsky,et al. Porous three-dimensional scaffolds made of mineralised collagen: Preparation and properties of a biomimetic nanocomposite material for tissue engineering of bone , 2008 .
[37] Barry J Doyle,et al. Mechanical behaviour of alginate-gelatin hydrogels for 3D bioprinting. , 2018, Journal of the mechanical behavior of biomedical materials.