A comprehensive review on scaffold-free bioinks for bioprinting

[1]  Peter Border,et al.  3D bioprinting in medicine , 2020 .

[2]  Hao Sun,et al.  Combining additive manufacturing with microfluidics: an emerging method for developing novel organs-on-chips , 2020 .

[3]  A. Zamanian,et al.  Additively manufactured small-diameter vascular grafts with improved tissue healing using a novel SNAP impregnation method. , 2020, Journal of biomedical materials research. Part B, Applied biomaterials.

[4]  A. Zamanian,et al.  A critical review on three dimensional-printed chitosan hydrogels for development of tissue engineering , 2020 .

[5]  Mohammad Rahimi-Gorji,et al.  Scaffold-free: A developing technique in field of tissue engineering , 2020, Comput. Methods Programs Biomed..

[6]  Hansoo Park,et al.  Spheroid Culture System Methods and Applications for Mesenchymal Stem Cells , 2019, Cells.

[7]  R. Zengerle,et al.  Bioprinting of high cell‐density constructs leads to controlled lumen formation with self‐assembly of endothelial cells , 2019, Journal of tissue engineering and regenerative medicine.

[8]  Eben Alsberg,et al.  Individual cell-only bioink and photocurable supporting medium for 3D printing and generation of engineered tissues with complex geometries. , 2019, Materials horizons.

[9]  Soumitra Das,et al.  An Overview of Hydrogel-Based Bioinks for 3D Bioprinting of Soft Tissues , 2019, Journal of the Indian Institute of Science.

[10]  Jianyi(Jay) Zhang,et al.  Scaffold-Free Bioprinter Utilizing Layer-By-Layer Printing of Cellular Spheroids , 2019, Micromachines.

[11]  H. Declercq,et al.  Scaffold Free Microtissue Formation for Enhanced Cartilage Repair , 2019, Annals of Biomedical Engineering.

[12]  Owen Tao,et al.  The Applications of 3D Printing for Craniofacial Tissue Engineering , 2019, Micromachines.

[13]  Wei Sun,et al.  3D bioprinting of hepatoma cells and application with microfluidics for pharmacodynamic test of Metuzumab , 2019, Biofabrication.

[14]  W. Tan,et al.  Dynamic formation of cellular aggregates of chondrocytes and mesenchymal stem cells in spinner flask , 2019, Cell proliferation.

[15]  Tien-Min G. Chu,et al.  Scaffold-free bioprinting of mesenchymal stem cells using the Regenova printer: Spheroid characterization and osteogenic differentiation. , 2019, Bioprinting.

[16]  H. Joensson,et al.  Rapid Production and Recovery of Cell Spheroids by Automated Droplet Microfluidics , 2019, bioRxiv.

[17]  Deepak Choudhury,et al.  Microfluidic bioprinting for organ-on-a-chip models. , 2019, Drug discovery today.

[18]  Qingzhen Yang,et al.  Fabrication of three-dimensional islet models by the geometry-controlled hanging-drop method , 2019, Acta Mechanica Sinica.

[19]  Randall J. Lee,et al.  Enhancement of human adipose-derived stem cell spheroid differentiation in an in situ enzyme-crosslinked gelatin hydrogel. , 2019, Journal of materials chemistry. B.

[20]  S. Majd,et al.  Preparation and characterization of size-controlled glioma spheroids using agarose hydrogel microwells , 2019, PloS one.

[21]  Wei Sun,et al.  Bioprinting of 3D breast epithelial spheroids for human cancer models , 2019, Biofabrication.

[22]  Ali Khademhosseini,et al.  Bioinks and bioprinting technologies to make heterogeneous and biomimetic tissue constructs , 2019, Materials today. Bio.

[23]  M. Itoh,et al.  Fabrication of scaffold-free tubular cardiac constructs using a Bio-3D printer , 2018, PloS one.

[24]  Lester J. Smith,et al.  Impact of Hepatic Stellate Cells in Scaffold-Free 3D-Bioprinting of the Liver Model , 2018, Proceedings of IMPRS.

[25]  M Gelinsky,et al.  A definition of bioinks and their distinction from biomaterial inks , 2018, Biofabrication.

[26]  Ibrahim T. Ozbolat,et al.  Porous tissue strands: avascular building blocks for scalable tissue fabrication , 2018, Biofabrication.

[27]  G. Ghali,et al.  High-throughput scaffold-free microtissues through 3D printing , 2018, 3D Printing in Medicine.

[28]  A. Seyfoori,et al.  Self-filling microwell arrays (SFMAs) for tumor spheroid formation. , 2018, Lab on a chip.

[29]  Christian D. Ahrberg,et al.  Generation of uniform-sized multicellular tumor spheroids using hydrogel microwells for advanced drug screening , 2018, Scientific Reports.

[30]  Sung-Hwan Kim,et al.  Fabrication of omega-shaped microwell arrays for a spheroid culture platform using pins of a commercial CPU to minimize cell loss and crosstalk , 2018, Biofabrication.

[31]  Ipeknaz Özden Decellularized extracellular matrix-agarose hybrid bioink development for 3D bioprinting applications , 2018 .

[32]  A. Arslan-Yildiz,et al.  Scaffold-free three-dimensional cell culturing using magnetic levitation. , 2018, Biomaterials science.

[33]  Yusef D. Khesuani,et al.  Scaffold-free, label-free and nozzle-free biofabrication technology using magnetic levitational assembly , 2018, Biofabrication.

[34]  C. Naus,et al.  Modelling glioma invasion using 3D bioprinting and scaffold-free 3D culture , 2018, Journal of Cell Communication and Signaling.

[35]  Jingyun Ma,et al.  Bioprinting of 3D tissues/organs combined with microfluidics , 2018, RSC advances.

[36]  N. Kashaninejad,et al.  Inventions and Innovations in Preclinical Platforms for Cancer Research , 2018, Inventions.

[37]  Navid Hakimi,et al.  Handheld skin printer: in situ formation of planar biomaterials and tissues. , 2018, Lab on a chip.

[38]  Lester J. Smith,et al.  FABRICA: A Bioreactor Platform for Printing, Perfusing, Observing, & Stimulating 3D Tissues , 2018, Scientific Reports.

[39]  K. Nakayama,et al.  Scaffold-free trachea regeneration by tissue engineering with bio-3D printing. , 2018, Interactive cardiovascular and thoracic surgery.

[40]  D. K. Cullen,et al.  3D bio-printed scaffold-free nerve constructs with human gingiva-derived mesenchymal stem cells promote rat facial nerve regeneration , 2018, Scientific Reports.

[41]  Jiseok Lim,et al.  Mass fabrication of uniform sized 3D tumor spheroid using high‐throughput microfluidic system , 2018, Journal of controlled release : official journal of the Controlled Release Society.

[42]  Ali Khademhosseini,et al.  The Synergy of Scaffold-Based and Scaffold-Free Tissue Engineering Strategies. , 2018, Trends in biotechnology.

[43]  Nicanor I Moldovan,et al.  Progress in scaffold‐free bioprinting for cardiovascular medicine , 2018, Journal of cellular and molecular medicine.

[44]  N. Hibino,et al.  In vivo therapeutic applications of cell spheroids. , 2018, Biotechnology advances.

[45]  Wojciech Święszkowski,et al.  Translational Application of Microfluidics and Bioprinting for Stem Cell-Based Cartilage Repair , 2018, Stem cells international.

[46]  Samar Damiati,et al.  Microfluidic Devices for Drug Delivery Systems and Drug Screening , 2018, Genes.

[47]  Xing‐dong Zhang,et al.  Degradation regulated bioactive hydrogel as the bioink with desirable moldability for microfluidic biofabrication. , 2017, Carbohydrate polymers.

[48]  C. Norotte,et al.  Cellular bioink surface tension: A tunable biophysical parameter for faster maturation of bioprinted tissue , 2017 .

[49]  C. GettlerBrian,et al.  Formation of Adipose Stromal Vascular Fraction Cell-Laden Spheroids Using a Three-Dimensional Bioprinter and Superhydrophobic Surfaces , 2017 .

[50]  P. Marcato,et al.  Comparative Analysis of 3D Bladder Tumor Spheroids Obtained by Forced Floating and Hanging Drop Methods for Drug Screening , 2017, Front. Physiol..

[51]  Zhizhong Yin,et al.  Microfluidic device for primary tumor spheroid isolation , 2017, Experimental Hematology & Oncology.

[52]  J. Yipeng,et al.  Microtissues Enhance Smooth Muscle Differentiation and Cell Viability of hADSCs for Three Dimensional Bioprinting , 2017, Front. Physiol..

[53]  N. Hibino,et al.  Biomaterial-Free Three-Dimensional Bioprinting of Cardiac Tissue using Human Induced Pluripotent Stem Cell Derived Cardiomyocytes , 2017, Scientific Reports.

[54]  N. Hibino,et al.  Creation of Cardiac Tissue Exhibiting Mechanical Integration of Spheroids Using 3D Bioprinting. , 2017, Journal of visualized experiments : JoVE.

[55]  Benjamin P. C. Chen,et al.  Three-dimensional spheroid culture targeting versatile tissue bioassays using a PDMS-based hanging drop array , 2017, Scientific Reports.

[56]  B. Koç,et al.  Cell sheet based bioink for 3D bioprinting applications , 2017, Biofabrication.

[57]  T J Sego,et al.  A heuristic computational model of basic cellular processes and oxygenation during spheroid-dependent biofabrication , 2017, Biofabrication.

[58]  I MoldovanNicanor,et al.  Principles of the Kenzan Method for Robotic Cell Spheroid-Based Three-Dimensional Bioprinting* , 2017 .

[59]  Feng Xu,et al.  Stem cell culture and differentiation in microfluidic devices toward organ-on-a-chip , 2017, Future science OA.

[60]  S. Onteru,et al.  Hanging Drop, A Best Three-Dimensional (3D) Culture Method for Primary Buffalo and Sheep Hepatocytes , 2017, Scientific Reports.

[61]  Y. S. Zhang,et al.  Interplay between materials and microfluidics. , 2017, Nature reviews. Materials.

[62]  H. Kizawa,et al.  Scaffold-free 3D bio-printed human liver tissue stably maintains metabolic functions useful for drug discovery , 2017, Biochemistry and biophysics reports.

[63]  Murat Guvendiren,et al.  Recent Advances in Bioink Design for 3D Bioprinting of Tissues and Organs , 2017, Front. Bioeng. Biotechnol..

[64]  Nam-Trung Nguyen,et al.  Microfluidic Technology for the Generation of Cell Spheroids and Their Applications , 2017, Micromachines.

[65]  G. Vladisavljević,et al.  Microfluidic Production of Multiple Emulsions , 2017, Micromachines.

[66]  Ibrahim T. Ozbolat,et al.  The bioink: A comprehensive review on bioprintable materials. , 2017, Biotechnology advances.

[67]  X. Cui,et al.  Advances in multicellular spheroids formation , 2017, Journal of The Royal Society Interface.

[68]  Léa J Pourchet,et al.  Human Skin 3D Bioprinting Using Scaffold‐Free Approach , 2017, Advanced healthcare materials.

[69]  Tao Xu,et al.  3D bioprinted glioma stem cells for brain tumor model and applications of drug susceptibility , 2016, Biofabrication.

[70]  A. Hursthouse,et al.  A Quiescent, Regeneration-Responsive Tissue Engineered Mesenchymal Stem Cell Bone Marrow Niche Model via Magnetic Levitation. , 2016, ACS nano.

[71]  Jerry C. Hu,et al.  Cell-based tissue engineering strategies used in the clinical repair of articular cartilage. , 2016, Biomaterials.

[72]  Ibrahim T. Ozbolat,et al.  Three-dimensional bioprinting using self-assembling scalable scaffold-free “tissue strands” as a new bioink , 2016, Scientific Reports.

[73]  A. Gaharwar,et al.  Advanced Bioinks for 3D Printing: A Materials Science Perspective , 2016, Annals of Biomedical Engineering.

[74]  R. Soares,et al.  Designing Biomaterials for 3D Printing. , 2016, ACS biomaterials science & engineering.

[75]  Ali Khademhosseini,et al.  Advancing Tissue Engineering: A Tale of Nano-, Micro-, and Macroscale Integration. , 2016, Small.

[76]  S. Curley,et al.  Generation of Homogenous Three-Dimensional Pancreatic Cancer Cell Spheroids Using an Improved Hanging Drop Technique. , 2016, Tissue engineering. Part C, Methods.

[77]  James J. Yoo,et al.  A 3D bioprinting system to produce human-scale tissue constructs with structural integrity , 2016, Nature Biotechnology.

[78]  Alessandro Bevilacqua,et al.  3D tumor spheroid models for in vitro therapeutic screening: a systematic approach to enhance the biological relevance of data obtained , 2016, Scientific Reports.

[79]  Zoe Cesarz,et al.  Spheroid Culture of Mesenchymal Stem Cells , 2015, Stem cells international.

[80]  Ibrahim T. Ozbolat,et al.  Microfabrication of scaffold-free tissue strands for three-dimensional tissue engineering , 2015, Biofabrication.

[81]  Guoyou Huang,et al.  Bioprinting-Based High-Throughput Fabrication of Three-Dimensional MCF-7 Human Breast Cancer Cellular Spheroids , 2015 .

[82]  Liang Ma,et al.  Coaxial nozzle-assisted 3D bioprinting with built-in microchannels for nutrients delivery. , 2015, Biomaterials.

[83]  Thomas Geiser,et al.  Towards personalized medicine: chemosensitivity assays of patient lung cancer cell spheroids in a perfused microfluidic platform. , 2015, Lab on a chip.

[84]  P. Pinto-do-Ó,et al.  Three-dimensional spheroid cell culture of umbilical cord tissue-derived mesenchymal stromal cells leads to enhanced paracrine induction of wound healing , 2015, Stem Cell Research & Therapy.

[85]  Ibrahim T. Ozbolat,et al.  Scaffold-Based or Scaffold-Free Bioprinting: Competing or Complementing Approaches? , 2015 .

[86]  Bahattin Koc,et al.  3D bioprinting of biomimetic aortic vascular constructs with self‐supporting cells , 2015, Biotechnology and bioengineering.

[87]  BeauchampPhilippe,et al.  Development and Characterization of a Scaffold-Free 3D Spheroid Model of Induced Pluripotent Stem Cell-Derived Human Cardiomyocytes , 2015 .

[88]  J. Bacri,et al.  Magnetic engineering of stable rod-shaped stem cell aggregates: circumventing the pitfall of self-bending. , 2015, Integrative biology : quantitative biosciences from nano to macro.

[89]  Daniel Navajas,et al.  Hydraulic fracture during epithelial stretching , 2015, Nature materials.

[90]  Ibrahim T. Ozbolat,et al.  Tissue strands as “bioink” for scale-up organ printing , 2014, 2014 36th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.

[91]  Ying Mei,et al.  3D printing facilitated scaffold-free tissue unit fabrication , 2014, Biofabrication.

[92]  Sung-Hwan Kim,et al.  Microwell fabrication methods and applications for cellular studies , 2013 .

[93]  Chien-Chung Peng,et al.  A microfluidic device for uniform-sized cell spheroids formation, culture, harvesting and flow cytometry analysis. , 2013, Biomicrofluidics.

[94]  C. V. van Blitterswijk,et al.  Spheroid culture as a tool for creating 3D complex tissues. , 2013, Trends in biotechnology.

[95]  J. Morgan,et al.  Advances in the formation, use and understanding of multi-cellular spheroids , 2012, Expert opinion on biological therapy.

[96]  S. Sakarya,et al.  Is ‘Hanging Drop’ a Useful Method to Form Spheroids of Jimt, Mcf-7, T-47d, Bt-474 That are Breast Cancer Cell Lines , 2018 .