Literature DB >> 16771645

Direct freeform fabrication of seeded hydrogels in arbitrary geometries.

Daniel L Cohen1, Evan Malone, Hod Lipson, Lawrence J Bonassar.   

Abstract

A major challenge in tissue engineering is the generation of cell-seeded implants with structures that mimic native tissue, both in anatomic geometries and intratissue cell distributions. By combining the strengths of injection molding tissue engineering with those of solid freeform fabrication (SFF), three-dimensional (3-D) pre-seeded implants were fabricated without custom-tooling, enabling efficient production of patient-specific implants. The incorporation of SFF technology also enabled the fabrication of geometrically complex, multiple-material implants with spatially heterogeneous properties that would otherwise be challenging to produce. Utilizing a custom-built robotic SFF platform and gel deposition tools, alginate hydrogel was used with calcium sulfate as a crosslinking agent to produce pre-seeded living implants of arbitrary geometries. The process was determined to be sterile and viable at 94 +/- 5%. The GAG and hydroxyproline production was found to be similar to that of other implants fabricated using the same materials with different shaping methods. The geometric fidelity of the process was quantified by using the printing platform as a computerized measurement machine (CMM); the RMS surface roughness of printed samples in the z-dimension was found to be 0.16 +/- 0.02 mm.

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Year:  2006        PMID: 16771645     DOI: 10.1089/ten.2006.12.1325

Source DB:  PubMed          Journal:  Tissue Eng        ISSN: 1076-3279


  65 in total

1.  Integrated 3D-printed reactionware for chemical synthesis and analysis.

Authors:  Mark D Symes; Philip J Kitson; Jun Yan; Craig J Richmond; Geoffrey J T Cooper; Richard W Bowman; Turlif Vilbrandt; Leroy Cronin
Journal:  Nat Chem       Date:  2012-04-15       Impact factor: 24.427

2.  Evaluation of cell viability and functionality in vessel-like bioprintable cell-laden tubular channels.

Authors:  Yin Yu; Yahui Zhang; James A Martin; Ibrahim T Ozbolat
Journal:  J Biomech Eng       Date:  2013-09       Impact factor: 2.097

3.  A multimaterial bioink method for 3D printing tunable, cell-compatible hydrogels.

Authors:  Alexandra L Rutz; Kelly E Hyland; Adam E Jakus; Wesley R Burghardt; Ramille N Shah
Journal:  Adv Mater       Date:  2015-01-16       Impact factor: 30.849

4.  An optical method for evaluation of geometric fidelity for anatomically shaped tissue-engineered constructs.

Authors:  Jeffrey J Ballyns; Daniel L Cohen; Evan Malone; Suzanne A Maher; Hollis G Potter; Timothy Wright; Hod Lipson; Lawrence J Bonassar
Journal:  Tissue Eng Part C Methods       Date:  2010-08       Impact factor: 3.056

5.  Microfluidic culture models of tumor angiogenesis.

Authors:  Abraham D Stroock; Claudia Fischbach
Journal:  Tissue Eng Part A       Date:  2010-07       Impact factor: 3.845

Review 6.  Biohybrid Design Gets Personal: New Materials for Patient-Specific Therapy.

Authors:  Ritu Raman; Robert Langer
Journal:  Adv Mater       Date:  2019-07-04       Impact factor: 30.849

7.  3D-Printed Tissue-Mimicking Phantoms for Medical Imaging and Computational Validation Applications.

Authors:  Aidan J Cloonan; Danial Shahmirzadi; Ronny X Li; Barry J Doyle; Elisa E Konofagou; Tim M McGloughlin
Journal:  3D Print Addit Manuf       Date:  2014-03-01       Impact factor: 5.449

8.  Drop-on-demand inkjet-based cell printing with 30-μm nozzle diameter for cell-level accuracy.

Authors:  Young Kwon Kim; Ju An Park; Woong Hee Yoon; Joonwon Kim; Sungjune Jung
Journal:  Biomicrofluidics       Date:  2016-11-30       Impact factor: 2.800

9.  A modified consumer inkjet for spatiotemporal control of gene expression.

Authors:  Daniel J Cohen; Roberto C Morfino; Michel M Maharbiz
Journal:  PLoS One       Date:  2009-09-18       Impact factor: 3.240

Review 10.  Image-guided tissue engineering.

Authors:  Jeffrey J Ballyns; Lawrence J Bonassar
Journal:  J Cell Mol Med       Date:  2009-07-06       Impact factor: 5.310

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