Literature DB >> 34114736

The evaluation of a multiphasic 3D-bioplotted scaffold seeded with adipose derived stem cells to repair osteochondral defects in a porcine model.

Rachel C Nordberg1,2, Pedro Huebner3,4,5, Karl G Schuchard3,4, Liliana F Mellor2, Rohan A Shirwaiker2,3,4, Elizabeth G Loboa1,6, Jeffery T Spang7.   

Abstract

There is a need for the development of effective treatments for focal articular cartilage injuries. We previously developed a multiphasic 3D-bioplotted osteochondral scaffold design that can drive site-specific tissue formation when seeded with adipose-derived stem cells (ASC). The objective of this study was to evaluate this scaffold in a large animal model. Osteochondral defects were generated in the trochlear groove of Yucatan minipigs and repaired with scaffolds that either contained or lacked an electrospun tidemark and were either unseeded or seeded with ASC. Implants were monitored via computed tomography (CT) over the course of 4 months of in vivo implantation and compared to both open lesions and autologous explants. ICRS II evaluation indicated that defects with ASC-seeded scaffolds had healing that most closely resembled the aulogous explant. Scaffold-facilitated subchondral bone repair mimicked the structure of native bone tissue, but cartilage matrix staining was not apparent within the scaffold. The open lesions had the highest volumetric infill detected using CT analysis (p < 0.05), but the repair tissue was largely disorganized. The acellular scaffold without a tidemark had significantly more volumetric filling than either the acellular or ASC seeded groups containing a tidemark (p < 0.05), suggesting that the tidemark limited cell infiltration into the cartilage portion of the scaffold. Overall, scaffold groups repaired the defect more successfully than an open lesion but achieved limited repair in the cartilage region. With further optimization, this approach holds potential to treat focal cartilage lesions in a highly personalized manner using a human patient's own ASC cells.
© 2021 Wiley Periodicals LLC.

Entities:  

Keywords:  3D-printing; in vivo; osteochondral; stem cells; tissue engineering

Mesh:

Year:  2021        PMID: 34114736      PMCID: PMC8490306          DOI: 10.1002/jbm.b.34886

Source DB:  PubMed          Journal:  J Biomed Mater Res B Appl Biomater        ISSN: 1552-4973            Impact factor:   3.368


  53 in total

1.  Anatomically shaped osteochondral constructs for articular cartilage repair.

Authors:  Clark T Hung; Eric G Lima; Robert L Mauck; Erica Takai; Erica Taki; Michelle A LeRoux; Helen H Lu; Robert G Stark; X Edward Guo; Gerard A Ateshian
Journal:  J Biomech       Date:  2003-12       Impact factor: 2.712

2.  Viscoelastic and biomechanical properties of osteochondral tissue constructs generated from graded polycaprolactone and beta-tricalcium phosphate composites.

Authors:  Cevat Erisken; Dilhan M Kalyon; Hongjun Wang
Journal:  J Biomech Eng       Date:  2010-09       Impact factor: 2.097

3.  Isolation of human mesenchymal stem cells from bone and adipose tissue.

Authors:  Susan H Bernacki; Michelle E Wall; Elizabeth G Loboa
Journal:  Methods Cell Biol       Date:  2008       Impact factor: 1.441

Review 4.  Our Fat Future: Translating Adipose Stem Cell Therapy.

Authors:  Rachel C Nordberg; Elizabeth G Loboa
Journal:  Stem Cells Transl Med       Date:  2015-07-16       Impact factor: 6.940

5.  Cartilage repair and subchondral bone remodeling in response to focal lesions in a mini-pig model: implications for tissue engineering.

Authors:  Matthew B Fisher; Nicole S Belkin; Andrew H Milby; Elizabeth A Henning; Marc Bostrom; Minwook Kim; Christian Pfeifer; Gregory Meloni; George R Dodge; Jason A Burdick; Thomas P Schaer; David R Steinberg; Robert L Mauck
Journal:  Tissue Eng Part A       Date:  2014-12-11       Impact factor: 3.845

6.  Complete subchondral bone defect regeneration with a tricalcium phosphate collagen implant and osteoinductive growth factors: a randomized controlled study in Göttingen minipigs.

Authors:  Tobias Gotterbarm; Steffen J Breusch; Martin Jung; Nikolaus Streich; Jörg Wiltfang; Simona Berardi Vilei; Wiltrud Richter; Tobias Nitsche
Journal:  J Biomed Mater Res B Appl Biomater       Date:  2013-11-21       Impact factor: 3.368

7.  Orderly osteochondral regeneration in a sheep model using a novel nano-composite multilayered biomaterial.

Authors:  Elizaveta Kon; Marco Delcogliano; Giuseppe Filardo; Milena Fini; Gianluca Giavaresi; Silvia Francioli; Ivan Martin; Daniele Pressato; Elena Arcangeli; Rodolfo Quarto; Monica Sandri; Maurillo Marcacci
Journal:  J Orthop Res       Date:  2010-01       Impact factor: 3.494

8.  Electrospun composite poly(L-lactic acid)/tricalcium phosphate scaffolds induce proliferation and osteogenic differentiation of human adipose-derived stem cells.

Authors:  S D McCullen; Y Zhu; S H Bernacki; R J Narayan; B Pourdeyhimi; R E Gorga; E G Loboa
Journal:  Biomed Mater       Date:  2009-04-24       Impact factor: 3.715

Review 9.  The cartilage-bone interface.

Authors:  Caroline D Hoemann; Charles-Hubert Lafantaisie-Favreau; Viorica Lascau-Coman; Gaoping Chen; Jessica Guzmán-Morales
Journal:  J Knee Surg       Date:  2012-05       Impact factor: 2.757

10.  Electrical Cell-Substrate Impedance Spectroscopy Can Monitor Age-Grouped Human Adipose Stem Cell Variability During Osteogenic Differentiation.

Authors:  Rachel C Nordberg; Jianlei Zhang; Emily H Griffith; Matthew W Frank; Binil Starly; Elizabeth G Loboa
Journal:  Stem Cells Transl Med       Date:  2016-09-07       Impact factor: 6.940

View more
  2 in total

Review 1.  3D Printing for Bone-Cartilage Interface Regeneration.

Authors:  Jialian Xu; Jindou Ji; Juyang Jiao; Liangjun Zheng; Qimin Hong; Haozheng Tang; Shutao Zhang; Xinhua Qu; Bing Yue
Journal:  Front Bioeng Biotechnol       Date:  2022-02-14

Review 2.  The Emerging Use of ASC/Scaffold Composites for the Regeneration of Osteochondral Defects.

Authors:  Gohar Rahman; Trivia P Frazier; Jeffrey M Gimble; Omair A Mohiuddin
Journal:  Front Bioeng Biotechnol       Date:  2022-06-30
  2 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.