3 차원 프린팅 기술로 제작된 조직공학용 3 차원 구조체

논문상세정보
' 3 차원 프린팅 기술로 제작된 조직공학용 3 차원 구조체' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • 기계공학
  • cad/cam(컴퓨터기반설계및제조)
  • cell/organprinting(세포/장기프린팅)
  • scaffold(인공지지체)
  • three-dimensionalprinting(3차원프린팅)
  • tissue engineering(조직 공학)
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
939 0

0.0%

' 3 차원 프린팅 기술로 제작된 조직공학용 3 차원 구조체' 의 참고문헌

  • Unit Cell-based Computer-aided Manufacturing System for Tissue Engineering
    Kang, H.-Y Biofabrication 4 (1) : 015005 ~ [2012]
  • Tunable Hydrogel Composite with Two-step Processing in Combination with Innovative Hardware Upgrade for Cell-based Three-dimensional Bioprinting
    Wüst, S Acta Biomaterialia 10 (2) : 630 ~ 640 [2014]
  • Three-dimensional Printing of Stem Cell-laden Hydrogels Submerged in a Hydrophobic High-density Fluid
    Campos, D. F. D Biofabrication 5 (1) : 015003 ~ [2013]
  • Three-dimensional Printed Trileaflet Valve Conduits Using Biological Hydrogels and Human Valve Interstitial Cells
    Duan, B Acta Biomaterialia [2013]
  • Three-dimensional Inkjet Biofabrication based on Designed Images
    Arai, K Biofabrication 3 (3) : 034113 ~ [2011]
  • Three-dimensional Fiber Deposition of Cell-laden, Viable, Patterned Constructs for Bone Tissue Printing
    Fedorovich, N. E Tissue Engineering Part A 14 (1) : 127 ~ 133 [2008]
  • The Pore Size of Polycaprolactone Scaffolds has Limited Influence on Bone Regeneration in an in Vivo Model
    Mantila, R. S. M Journal of Biomedical Materials Research Part A 92A (1) : 359 ~ 368 [2008]
  • Synthesis and Recovery Characteristics of Branched and Grafted PNIPAAm–PEG hydrogels for the Development of an Injectable Load-bearing Nucleus Pulposus Replacement
    Thomas, J. D Acta Biomaterialia 6 (4) : 1319 ~ 1328 [2010]
  • Solid Freeform Fabrication of Three-Dimensional Scaffolds for Engineering Replacement Tissues and Organs
    Leong, K. F Biomaterials 24 (13) : 2363 ~ 2378 [2010]
  • Solid Freeform Fabrication Technology Applied to Tissue Engineering with Various Biomaterials
    Seol, Y.-J Soft matter 8 (6) : 1730 ~ 1735 [2012]
  • Scaffolds for Tissue Fabrication
    Ma, P. X Materials today 7 (5) : 30 ~ 40 [2004]
  • Scaffold-based Tissue Engineering: Rationale for Computer-aided Desing and Solid Free-form Fabrication Systems
    Hutmacher, D.W TRENDS in Biotechnology 22 (7) : 354 ~ 362 [2004]
  • Scaffold Fabrication by Indirect Three-dimensional Printing
    Lee, M Biomaterials 26 (20) : 4281 ~ 4289 [2005]
  • Scaffold Development Using Selective Laser Sintering of Polyetheretherketone–hydroxyapatite Biocomposite Blends
    Tan, K. H Biomaterials 24 (18) : 3115 ~ 3123 [2003]
  • Scaffold Design and Manufacturing: from Concept to Clinic
    Hollister, S. J Advanced materials 21 (32~33) : 3330 ~ 3342 [2009]
  • Rheological Behavior of Alginate Solutions for Biomanufacturing
    Rezende, R. A Journal of Applied Polymer Science 113 (6) : 3866 ~ 3871 [2009]
  • Rapid Prototyping in Tissue Engineering: Challenges and Potential
    Yeong, W.-Y TRENDS in Biotechnology 22 (12) : 643 ~ 652 [2004]
  • Quantitative Optimization of Solid Freeform Deposition of Aqueous Hydrogels
    Kang, K. H Biofabrication 5 (3) : 035001 ~ [2013]
  • Projection Image-generation Algorithm for Fabrication of a Complex Structure using Projection-based Microstereolithography
    정진우 International Journal of Precision Engineering and Manufacturing 13 (3) : 445 ~ 449 [2012]
  • Printing and Prototyping of Tissues and Scaffolds
    Derby, B Science 338 (6109) : 921 ~ 926 [2012]
  • Printing Three-dimensional Tissue Analogues with Decellularized Extracellular Matrix Bioink
    Pati, F Nature Communications 5 (3935) [2014]
  • Preparation of Porous Scaffolds by Using Freeze-extraction and Freeze-gelation Methods
    Ho, M. H Biomaterials 25 (1) : 129 ~ 138 [2004]
  • Porous Scaffold Design for Tissue Engineering
    Hollister, S. J Nature materials 4 (7) : 518 ~ 524 [2005]
  • Porous Bioprinted Constructs in BMP-2 Non-viral Gene Therapy for Bone Tissue Engineering
    Loozen, L. D Journal of Materials Chemistry B 1 (48) : 6619 ~ 6626 [2013]
  • Novel 3D Collagen Scaffolds Fabricated by Indirect Printing Technique for Tissue Engineering
    Liu, C. Z Journal of Biomedical Materials Research Part B 85 (2) : 519 ~ 528 [2008]
  • Mechanical Properties and Cell Cultural Response of Polycaprolactone Scaffolds Designed and Fabricated via Fused Deposition Modeling
    Hutmacher, D.W Journal of Biomedical Materials Research 55 (2) : 203 ~ 216 [2001]
  • Making Tissue Engineering Scaffolds Work. Review: the Application of Solid Freeform Fabrication Technology to the Production of Tissue Engineering Scaffolds
    Sachlos, E Eur. Cell Mater 5 (29) : 39 ~ 40 [2003]
  • Injectability of Biodegradable in Situ Forming Microparticle Systems (ISM)
    Rungseevijitprapa, W European Journal of Pharmaceutical Sciences 36 (4) : 524 ~ 531 [2009]
  • Indirect Three-dimensional (3D) Printing of Synthetic Polymer Scaffold Based on Thermal Molding Process
    Park, J. H Biofabrication [2014]
  • Indirect Solid Free Form Fabrication of Local and Global Porous, Biomimetic and Composite 3D Polymer-ceramic Scaffolds
    Taboas, J. M Biomaterials 24 (1) : 181 ~ 194
  • Hybrid Scaffold Composed of Hydrogel/3Dframework and its Application as a Dopamine Delivery System
    Kang, K. S Journal of Controlled Release 175 : 10 ~ 16 [2014]
  • Hyaluronic Acid and Dextran-based Semi-IPN Hydrogels as Biomaterials for Bioprinting
    Pescosolido, L Biomacromolecules 12 (5) : 1831 ~ 1838 [2011]
  • Generation of Threedimensional Hepatocyte/Gelatin Structures with Rapid Prototyping System
    Wang, X Tissue Engineering 12 (1) : 83 ~ 90 [2006]
  • Fabrication of Porous Biodegradable Polymer Scaffolds Using a Solvent Merging/Particulate Leaching Method
    Liao, C. J Journal of biomedical materials Research: Part A 59 (4) : 676 ~ 681 [2002]
  • Fabrication of Controlled Release Biodegradable Foams by Phase Separation
    Lo, H Tissue engineering 1 (1) : 15 ~ 28 [1995]
  • Fabrication of Blended Polycaprolactone/Poly (lacticco-glycolic acid)/β-Tricalcium Phosphate Thin Membrane using Solid Freeform Fabrication Technology for Guided Bone Regeneration
    Shim, J.-H Tissue Engineering Part A 19 (3~4) : 317 ~ 328 [2013]
  • Fabrication of 3D Alginate Scaffold with Interconnected Pores using Wire-Network Molding Technique
    이세환 조직공학과 재생의학 10 (2) : 53 ~ 59 [2013]
  • Fabrication and Characterization of Poly(Propylene Fumarate) Scaffolds with Controlled Pore Structures Using 3-Dimensional Printing and Injection Molding
    Lee, K.-W Tissue Engineering 12 (10) : 2801 ~ 2811 [2006]
  • Evaluation of SFF-based Scaffolds Seeded with Osteoblasts and HUVECs for Use in vivo Osteogenesis
    Kim, J. Y Tissue Engineering Part A 16 (7) : 2229 ~ 2236 [2010]
  • Effect of a Scaffold Fabricated Thermally from Acetylated PLGA on the Formation of Engineered Cartilage
    Kang, S.-W Macromolecular Bioscience 11 (2) : 267 ~ 274 [2010]
  • Effect of Thermal Degradation of SFF-based PLGA Scaffolds Fabricated Using a Multi-head Deposition System Followed by Change of Cell Growth Rate
    Shim, J.-H Journal of Biomaterials Science, Polymer Edition 21 (8~9) : 1069 ~ 1080 [2010]
  • Effect of Pore Architecture and Stacking Direction on Mechanical Properties of Solid Freeform Fabrication based Scaffold for Bone Tissue Engineering
    Lee, J.-S Journal of Biomedical Materials Research Part A 100A (7) : 1846 ~ 1853 [2012]
  • Direct Fabrication of a Hybrid Cell/Hydrogel Construct by a Double-nozzle Assembling Technology
    Li, S Journal of Bioactive and Compatible Polymers 24 (3) : 249 ~ 265 [2009]
  • Development of the Flow Behavior Model for 3D Scaffold Fabrication in the Polymer Deposition Process by a Heating Method
    Kim, J. Y Journal of Micromechanics and Microengineering 19 (10) : 105003 ~ [2009]
  • Development of an Indirect Stereolithography Technology for Scaffold Fabrication with a Wide Range of Biomaterial Selectivity
    Kang, H.-W Tissue Engineering Part C 18 (9) : 719 ~ 729 [2012]
  • Development of a Hybrid Scaffold with Synthetic Biomaterials and Hydrogel using Solid Freeform Fabrication Technology
    Shim, J.-H Biofabrication 3 (3) : 034102 ~ [2011]
  • Development of a 3D Bellows Tracheal Graft: Mechanical Behavior Analysis, Fabrication and an in Vivo Feasibility Study
    Park, J. H Biofabrication 4 (3) : 035004 ~ [2012]
  • Development of Micro-Stereolithography Technology Using a UV Lamp and Optical Fiber
    Choi, J. S International Journal of Advanced Manufacturing Technology 41 (3~4) : 281 ~ 286 [2009]
  • Current Trends in the Design of Scaffolds for Computer-aided Tissue Engineering
    Giannitelli, S. M Acta Biomaterialia 10 (2) : 580 ~ 594 [2014]
  • Construction of 3D Biological Matrices using Rapid Prototyping Technology
    Maher, P. S Rapid Prototyping Journal 15 (3) : 204 ~ 210 [2009]
  • Computer-Aided Tissue Engineering
    Cho, D.-W Humana Press : 341 ~ 356 [2012]
  • Comparison of Drying Methods in the Fabrication of Collagen Scaffold Via Indirect Rapid Prototyping
    Yeong, W.-Y Journal of Biomedical Materials Research Part B 82 (1) : 260 ~ 266 [2006]
  • Characterization of Cell Viability during Bioprinting Processes
    Nair, K Biotechnology Journal 4 : 1168 ~ 1177 [2009]
  • Cell Damage Evaluation of Thermal Inkjet Printed Chinese Hamster Ovary Cells
    Cui, X Biotechnology and Bioengineering 106 (6) : 963 ~ 969 [2010]
  • Cardiac Tissue Engineering Using Tissue Printing Technology and Human Cardiac Progenitor Cells
    Gaetani, R Biomaterials 33 (6) : 1782 ~ 1790 [2012]
  • Carbon Nanotube reinforced Hybrid Microgels as Scaffold Materials for Cell Encapsulation
    Shin, S. R ACS Nano 6 (1) : 362 ~ 372 [2011]
  • Bone Tissue Engineering Using Polycaprolactone Scaffolds Fabricated via Selective Laser Sintering
    Williams, J. M Biomaterials 26 (23) : 4817 ~ 4827 [2005]
  • Bioprinting of a Mechanically Enhanced Three-Dimensional Dual Cell-laden Construct for Osteochondral Tissue Engineering using a Multi-head Tissue/Organ Building System
    Shim, J.-H Journal of Micromechanics and Microengineering 22 (8) : 085014 ~ [2012]
  • Bioprinting of Hybrid Tissue Constructs with Tailorable Mechanical Properties
    Schuurman, W Biofabrication 3 (2) : 021001 ~ [2011]
  • Biomatrices and Biomaterials for Future Developments of Bioprinting and Biofabrication
    Nakamura, M Biofabrication 2 (1) : 014110 ~ [2010]
  • Biofabrication: An Overview of the Approaches used for Printing of Living Cells
    Ferris, C. J Applied Microbiology and Biotechnology 97 (10) : 4243 ~ 4258 [2013]
  • Biofabrication of Osteochondral Tissue Equivalents by Printing Topologically Defined, Cell-laden Hydrogel Scaffolds
    Fedorovich, N. E Tissue Engineering Part C: Methods 18 (1) : 33 ~ 44 [2011]
  • Biocompatible Inkjet Printing Technique for Designed Seeding of Individual Living Cells
    Nakamura, M Tissue Engineering 11 (11~12) : 1658 ~ 1666 [2005]
  • Application of Microstereolithography in the Development of Threedimensional Cartilage Regeneration Scaffolds
    Lee, S.-J Biomedical Microdevices 10 (2) : 233 ~ 241 [2008]
  • An Additive Manufacturing‐based PCL–Alginate–Chondrocyte Bioprinted Scaffold for Cartilage Tissue Engineering
    Kundu, J Journal of Tissue Engineering and Regenerative Medicine [2013]
  • A Pixel based Solidification Model for Projection based Stereolithography Technology
    Kang, H.-Y Sensor and Actuator A:Physical 178 : 223 ~ 229 [2012]
  • A Novel Fabrication Method of Macroporous Biodegradable Polymer Scaffolds Using Gas Foaming Salt as a Porogen Additive
    Nam, Y. S Biomaterials 24 (13) : 2323 ~ 2329 [2003]
  • A New Method of Fabricating Robust Freeform 3D Ceramic Scaffolds for Bone Tissue Regeneration
    Seol, Y.-J Biotechnology and Bioengineering 110 (5) : 1444 ~ 1455 [2013]
  • A Cell-laden Nanofiber/Hydrogel Composite Structure with Tough-soft Mechanical Property
    Jang, J Applied Physics Letters 102 (21) : 211914 ~ [2013]
  • 3D Printing of rhBMP-2 Loaded Scaffolds with Long-term Delivery for Enhanced Bone Regeneration in a Rabbit Diaphyseal Defect
    Shim, J.-H Tissue Engineering Part A, Accepted for publication [2014]
  • 3D Printing of Composite Tissue with Complex Shape Applied to Ear Regeneration
    Lee, J.-S Biofabrication 6 (2) : 024103 ~ [2014]
  • 3D Bioprinting of Heterogeneous Aortic Valve Conduits with Alginate/Gelatin Hydrogels
    Duan, B Journal of Biomedical Materials Research Part A 101 (5) : 1255 ~ 1264 [2013]