Engineering gelatin-based alginate/carbon nanotubes blend bioink for direct 3D printing of vessel constructs.
暂无分享,去创建一个
Liying Li | Yi Nie | Kedong Song | Tianqing Liu | Jun Peng | Tianqing Liu | Kedong Song | Liying Li | Yi Nie | Shuai Qin | Ang Chen | Ang Chen | J. Peng | Shuai Qin
[1] Mayasari Lim,et al. Three-dimensional dynamic fabrication of engineered cartilage based on chitosan/gelatin hybrid hydrogel scaffold in a spinner flask with a special designed steel frame. , 2015, Materials science & engineering. C, Materials for biological applications.
[2] Guang Yang,et al. Bioprinting and its applications in tissue engineering and regenerative medicine. , 2018, International journal of biological macromolecules.
[3] Hitoshi Shiku,et al. Electrodeposition of alginate gels for construction of vascular-like structures. , 2013, Journal of bioscience and bioengineering.
[4] Kirsten Borchers,et al. Bioprinting of artificial blood vessels: current approaches towards a demanding goal. , 2014, European journal of cardio-thoracic surgery : official journal of the European Association for Cardio-thoracic Surgery.
[5] M. Stevens,et al. Reactive polyurethane carbon nanotube foams and their interactions with osteoblasts. , 2009, Journal of biomedical materials research. Part A.
[6] Soyoung Hong,et al. Coaxial bioprinting of cell-laden vascular constructs using a gelatin-tyramine bioink. , 2019, Biomaterials science.
[7] 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.
[8] Alexander M Seifalian,et al. Carbon nanotubes leading the way forward in new generation 3D tissue engineering. , 2014, Biotechnology advances.
[9] V. Simpson. THE UNITED STATES PHARMACOPOEIA XI , 2020 .
[10] Ibrahim T. Ozbolat,et al. Effect of multiwall carbon nanotube reinforcement on coaxially extruded cellular vascular conduits. , 2014, Materials science & engineering. C, Materials for biological applications.
[11] P. Ma,et al. Stimuli-Responsive Conductive Nanocomposite Hydrogels with High Stretchability, Self-Healing, Adhesiveness, and 3D Printability for Human Motion Sensing. , 2019, ACS applied materials & interfaces.
[12] D. Tasis,et al. Current progress on the chemical modification of carbon nanotubes. , 2010, Chemical reviews.
[13] Peter X. Ma,et al. Aligned Conductive Core-Shell Biomimetic Scaffolds Based on Nanofiber Yarns/Hydrogel for Enhanced 3D Neurite Outgrowth Alignment and Elongation. , 2019, Acta biomaterialia.
[14] Ali Khademhosseini,et al. Direct 3D bioprinting of perfusable vascular constructs using a blend bioink. , 2016, Biomaterials.
[15] Dan Sun,et al. Cytocompatibility of a silk fibroin tubular scaffold. , 2014, Materials science & engineering. C, Materials for biological applications.
[16] Pedro L Granja,et al. Injectable alginate hydrogels for cell delivery in tissue engineering. , 2014, Acta biomaterialia.
[17] Ibrahim T. Ozbolat,et al. Bioprinting for vascular and vascularized tissue biofabrication. , 2017, Acta biomaterialia.
[18] J. Ciurana,et al. 3D-printed Tubular Scaffolds for Vascular Tissue Engineering , 2018 .
[19] Bin Zhang,et al. 3D Bioprinting: A Novel Avenue for Manufacturing Tissues and Organs , 2019, Engineering.
[20] R. Mülhaupt,et al. Polymers for 3D Printing and Customized Additive Manufacturing , 2017, Chemical reviews.
[21] A. Lobo,et al. An evaluation of cell proliferation and adhesion on vertically-aligned multi-walled carbon nanotube films , 2010 .
[22] R. Landers,et al. Rapid prototyping of scaffolds derived from thermoreversible hydrogels and tailored for applications in tissue engineering. , 2002, Biomaterials.
[23] Kyle Reeser,et al. A Bioink Blend for Rotary 3D Bioprinting Tissue Engineered Small-Diameter Vascular Constructs. , 2019, Acta biomaterialia.
[24] P. Ma,et al. Injectable antibacterial conductive nanocomposite cryogels with rapid shape recovery for noncompressible hemorrhage and wound healing , 2018, Nature Communications.
[25] Helinor J Johnston,et al. A critical review of the biological mechanisms underlying the in vivo and in vitro toxicity of carbon nanotubes: The contribution of physico-chemical characteristics , 2010, Nanotoxicology.
[26] Dhruv R. Seshadri,et al. A Review of Three-Dimensional Printing in Tissue Engineering. , 2016, Tissue engineering. Part B, Reviews.
[27] Aldo R Boccaccini,et al. Evaluation of an alginate–gelatine crosslinked hydrogel for bioplotting , 2015, Biofabrication.
[28] Manisha Pandey,et al. Carbon nanotube scaffolds as emerging nanoplatform for myocardial tissue regeneration: A review of recent developments and therapeutic implications. , 2018, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[29] B. Duan,et al. 3D bioprinting of heterogeneous aortic valve conduits with alginate/gelatin hydrogels. , 2013, Journal of biomedical materials research. Part A.
[30] Eneko Axpe,et al. Applications of Alginate-Based Bioinks in 3D Bioprinting , 2016, International journal of molecular sciences.
[31] Xin Fu,et al. Structurally and Functionally Optimized Silk‐Fibroin–Gelatin Scaffold Using 3D Printing to Repair Cartilage Injury In Vitro and In Vivo , 2017, Advanced materials.
[32] Y. L. Chuan,et al. Extrusion based rapid prototyping technique: An advanced platform for tissue engineering scaffold fabrication , 2012, Biopolymers.
[33] P. Dubruel,et al. The 3D printing of gelatin methacrylamide cell-laden tissue-engineered constructs with high cell viability. , 2014, Biomaterials.
[34] J. Berberich,et al. 3D printing of an interpenetrating network hydrogel material with tunable viscoelastic properties. , 2017, Journal of the mechanical behavior of biomedical materials.
[35] M. Prato,et al. Carbon nanotubes for organ regeneration: An electrifying performance , 2016 .
[36] Ali Khademhosseini,et al. Multiscale bioprinting of vascularized models. , 2019, Biomaterials.
[37] Liang Ma,et al. Coaxial nozzle-assisted 3D bioprinting with built-in microchannels for nutrients delivery. , 2015, Biomaterials.
[38] Baolin Guo,et al. Mussel-inspired, antibacterial, conductive, antioxidant, injectable composite hydrogel wound dressing to promote the regeneration of infected skin. , 2019, Journal of colloid and interface science.
[39] Ying Mei,et al. Engineering alginate as bioink for bioprinting. , 2014, Acta biomaterialia.
[40] Benjamin M Wu,et al. Recent advances in 3D printing of biomaterials , 2015, Journal of Biological Engineering.
[41] Ali Khademhosseini,et al. Bioinks for 3D bioprinting: an overview. , 2018, Biomaterials science.
[42] Seung-Joon Song,et al. Sodium alginate hydrogel-based bioprinting using a novel multinozzle bioprinting system. , 2011, Artificial organs.
[43] Zimeng Zhang,et al. 3D bioprinting of soft materials-based regenerative vascular structures and tissues , 2017 .
[44] J. Coleman,et al. Small but strong: A review of the mechanical properties of carbon nanotube–polymer composites , 2006 .
[45] Cristina Pacheco-Soares,et al. Cell viability and adhesion on as grown multi-wall carbon nanotube films , 2008 .
[46] Xuan Zhou,et al. Recent advances in 3D printing: vascular network for tissue and organ regeneration. , 2019, Translational research : the journal of laboratory and clinical medicine.
[47] Kang Zhang,et al. 3D printing of functional biomaterials for tissue engineering. , 2016, Current opinion in biotechnology.