Literature DB >> 26847742

Long-Term Morphological and Microarchitectural Stability of Tissue-Engineered, Patient-Specific Auricles In Vivo.

Benjamin Peter Cohen1, Rachel C Hooper2, Jennifer L Puetzer1, Rachel Nordberg1, Ope Asanbe2, Karina A Hernandez2, Jason A Spector1,2, Lawrence J Bonassar1,3.   

Abstract

Current techniques for autologous auricular reconstruction produce substandard ear morphologies with high levels of donor-site morbidity, whereas alloplastic implants demonstrate poor biocompatibility. Tissue engineering, in combination with noninvasive digital photogrammetry and computer-assisted design/computer-aided manufacturing technology, offers an alternative method of auricular reconstruction. Using this method, patient-specific ears composed of collagen scaffolds and auricular chondrocytes have generated auricular cartilage with great fidelity following 3 months of subcutaneous implantation, however, this short time frame may not portend long-term tissue stability. We hypothesized that constructs developed using this technique would undergo continued auricular cartilage maturation without degradation during long-term (6 month) implantation. Full-sized, juvenile human ear constructs were injection molded from high-density collagen hydrogels encapsulating juvenile bovine auricular chondrocytes and implanted subcutaneously on the backs of nude rats for 6 months. Upon explantation, constructs retained overall patient morphology and displayed no evidence of tissue necrosis. Limited contraction occurred in vivo, however, no significant change in size was observed beyond 1 month. Constructs at 6 months showed distinct auricular cartilage microstructure, featuring a self-assembled perichondrial layer, a proteoglycan-rich bulk, and rounded cellular lacunae. Verhoeff's staining also revealed a developing elastin network comparable to native tissue. Biochemical measurements for DNA, glycosaminoglycan, and hydroxyproline content and mechanical properties of aggregate modulus and hydraulic permeability showed engineered tissue to be similar to native cartilage at 6 months. Patient-specific auricular constructs demonstrated long-term stability and increased cartilage tissue development during extended implantation, and offer a potential tissue-engineered solution for the future of auricular reconstructions.

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Year:  2016        PMID: 26847742      PMCID: PMC4800266          DOI: 10.1089/ten.TEA.2015.0323

Source DB:  PubMed          Journal:  Tissue Eng Part A        ISSN: 1937-3341            Impact factor:   3.845


  41 in total

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2.  High density type I collagen gels for tissue engineering of whole menisci.

Authors:  Jennifer L Puetzer; Lawrence J Bonassar
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3.  Prefabricated, ear-shaped cartilage tissue engineering by scaffold-free porcine chondrocyte membrane.

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Review 4.  Microtia: epidemiology and genetics.

Authors:  Daniela V Luquetti; Carrie L Heike; Anne V Hing; Michael L Cunningham; Timothy C Cox
Journal:  Am J Med Genet A       Date:  2011-11-21       Impact factor: 2.802

5.  Riboflavin/ultraviolet-a-induced collagen crosslinking for the treatment of keratoconus.

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6.  Injection molding of chondrocyte/alginate constructs in the shape of facial implants.

Authors:  S C Chang; J A Rowley; G Tobias; N G Genes; A K Roy; D J Mooney; C A Vacanti; L J Bonassar
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8.  Human auricular tissue engineering in an immunocompetent animal model.

Authors:  Aris Sterodimas; Jose de Faria
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9.  High-fidelity tissue engineering of patient-specific auricles for reconstruction of pediatric microtia and other auricular deformities.

Authors:  Alyssa J Reiffel; Concepcion Kafka; Karina A Hernandez; Samantha Popa; Justin L Perez; Sherry Zhou; Satadru Pramanik; Bryan N Brown; Won Seuk Ryu; Lawrence J Bonassar; Jason A Spector
Journal:  PLoS One       Date:  2013-02-20       Impact factor: 3.240

10.  Prefabrication of 3D cartilage contructs: towards a tissue engineered auricle--a model tested in rabbits.

Authors:  Achim von Bomhard; Johannes Veit; Christian Bermueller; Nicole Rotter; Rainer Staudenmaier; Katharina Storck; Hoang Nguyen The
Journal:  PLoS One       Date:  2013-08-09       Impact factor: 3.240

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  6 in total

1.  Tissue Engineering Auricular Cartilage Using Late Passage Human Auricular Chondrocytes.

Authors:  Jaime L Bernstein; Benjamin P Cohen; Alexandra Lin; Alice Harper; Lawrence J Bonassar; Jason A Spector
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Review 2.  The Application of Cartilage Tissue Engineering with Cell-Laden Hydrogel in Plastic Surgery: A Systematic Review.

Authors:  Hongsen Bi; Zhenmin Zhao; Guanhuier Wang; Xinling Zhang; Xi Bu; Yang An
Journal:  Tissue Eng Regen Med       Date:  2021-10-07       Impact factor: 4.451

3.  Three-Dimensional-Printed External Scaffolds Mitigate Loss of Volume and Topography in Engineered Elastic Cartilage Constructs.

Authors:  Xue Dong; Ishani D Premaratne; Jaime L Bernstein; Arash Samadi; Alexandra J Lin; Yoshiko Toyoda; Jongkil Kim; Lawrence J Bonassar; Jason A Spector
Journal:  Cartilage       Date:  2021-10-12       Impact factor: 3.117

4.  Biofabrication of a shape-stable auricular structure for the reconstruction of ear deformities.

Authors:  I A Otto; P E Capendale; J P Garcia; M de Ruijter; R F M van Doremalen; M Castilho; T Lawson; M W Grinstaff; C C Breugem; M Kon; R Levato; J Malda
Journal:  Mater Today Bio       Date:  2021-01-21

5.  Tissue engineering the human auricle by auricular chondrocyte-mesenchymal stem cell co-implantation.

Authors:  Benjamin P Cohen; Jaime L Bernstein; Kerry A Morrison; Jason A Spector; Lawrence J Bonassar
Journal:  PLoS One       Date:  2018-10-24       Impact factor: 3.240

6.  Chondrocyte Spheroids Laden in GelMA/HAMA Hybrid Hydrogel for Tissue-Engineered Cartilage with Enhanced Proliferation, Better Phenotype Maintenance, and Natural Morphological Structure.

Authors:  Guanhuier Wang; Yang An; Xinling Zhang; Pengbing Ding; Hongsen Bi; Zhenmin Zhao
Journal:  Gels       Date:  2021-12-02
  6 in total

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