Literature DB >> 17518596

Structural bone allograft combined with genetically engineered mesenchymal stem cells as a novel platform for bone tissue engineering.

Chao Xie1, David Reynolds, Hani Awad, Paul T Rubery, Gadi Pelled, Dan Gazit, Robert E Guldberg, Edward M Schwarz, Regis J O'Keefe, Xinping Zhang.   

Abstract

The presence of live periosteal progenitor cells on the surface of bone autografts confers better healing than devitalized allograft. We have previously demonstrated in a murine 4 mm segmental femoral bone-grafting model that live periosteum produces robust endochondral and intramembraneous bone formation that is essential for effective healing and neovascularization of structural bone grafts. To the end of engineering a live pseudo-periosteum that could induce a similar response onto devitalized bone allograft, we seeded a mesenchymal stem cell line stably transfected with human bone morphogenic protein-2/beta-galactosidase (C9) onto devitalized bone allografts or onto a membranous small intestinal submucosa scaffold that was wrapped around the allograft. Histology showed that C9-coated allografts displayed early cartilaginous tissue formation at day 7. By 6 and 9 weeks, a new cortical shell was found bridging the segmental defect that united the host bones. Biomechanical testing showed that C9-coated allografts displayed torsional strength and stiffness equivalent to intact femurs at 6 weeks and superior to live isografts at 9 weeks. Volumetric and histomorphometric micro-computed tomography analyses demonstrated a 2-fold increase in new bone formation around C9-coated allografts, which resulted in a substantial increase in polar moment of inertia (pMOI) due to the formation of new cortical shell around the allografts. Positive correlations between biomechanics and new bone volume and pMOI were found, suggesting that the biomechanical function of the grafted femur relates to both morphological parameters. C9-coated allograft also exhibited slower resorption of the graft cortex at 9 weeks than live isograft. Both new bone formation and the persistent allograft likely contributed to the improved biomechanics of C9-coated allograft. Taken together, we propose a novel strategy to combine structural bone allograft with genetically engineered mesenchymal stem cells as a novel platform for bone tissue engineering.

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Year:  2007        PMID: 17518596     DOI: 10.1089/ten.2006.0182

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


  49 in total

1.  Activation of the Hh pathway in periosteum-derived mesenchymal stem cells induces bone formation in vivo: implication for postnatal bone repair.

Authors:  Qun Wang; Chunlan Huang; Fanjie Zeng; Ming Xue; Xinping Zhang
Journal:  Am J Pathol       Date:  2010-10-22       Impact factor: 4.307

Review 2.  Regulation of chondrogenesis and chondrocyte differentiation by stress.

Authors:  Michael J Zuscik; Matthew J Hilton; Xinping Zhang; Di Chen; Regis J O'Keefe
Journal:  J Clin Invest       Date:  2008-02       Impact factor: 14.808

3.  Quantification of massive allograft healing with dynamic contrast enhanced-MRI and cone beam-CT: a pilot study.

Authors:  Nicole Ehrhart; Susan Kraft; David Conover; Randy N Rosier; Edward M Schwarz
Journal:  Clin Orthop Relat Res       Date:  2008-06-10       Impact factor: 4.176

4.  The effect of mesenchymal stem cells delivered via hydrogel-based tissue engineered periosteum on bone allograft healing.

Authors:  Michael D Hoffman; Chao Xie; Xinping Zhang; Danielle S W Benoit
Journal:  Biomaterials       Date:  2013-08-16       Impact factor: 12.479

5.  Bone-chip system to monitor osteogenic differentiation using optical imaging.

Authors:  Dmitriy Sheyn; Doron Cohn-Yakubovich; Shiran Ben-David; Sandra De Mel; Virginia Chan; Christopher Hinojosa; Norman Wen; Geraldine A Hamilton; Dan Gazit; Zulma Gazit
Journal:  Microfluid Nanofluidics       Date:  2019-07-06       Impact factor: 2.529

6.  3D printing of composite calcium phosphate and collagen scaffolds for bone regeneration.

Authors:  Jason A Inzana; Diana Olvera; Seth M Fuller; James P Kelly; Olivia A Graeve; Edward M Schwarz; Stephen L Kates; Hani A Awad
Journal:  Biomaterials       Date:  2014-02-14       Impact factor: 12.479

7.  Non-invasive diffuse correlation tomography reveals spatial and temporal blood flow differences in murine bone grafting approaches.

Authors:  Songfeng Han; Ashley R Proctor; Joseph B Vella; Danielle S W Benoit; Regine Choe
Journal:  Biomed Opt Express       Date:  2016-08-09       Impact factor: 3.732

8.  Electrospun fibers as a scaffolding platform for bone tissue repair.

Authors:  Seungyoun Lyu; Chunlan Huang; Hong Yang; Xinping Zhang
Journal:  J Orthop Res       Date:  2013-04-11       Impact factor: 3.494

9.  Layer-by-layer nanofiber-enabled engineering of biomimetic periosteum for bone repair and reconstruction.

Authors:  Tao Wang; Yuankun Zhai; Marc Nuzzo; Xiaochuan Yang; Yunpeng Yang; Xinping Zhang
Journal:  Biomaterials       Date:  2018-08-14       Impact factor: 12.479

10.  NOTCH signaling in skeletal progenitors is critical for fracture repair.

Authors:  Cuicui Wang; Jason A Inzana; Anthony J Mirando; Yinshi Ren; Zhaoyang Liu; Jie Shen; Regis J O'Keefe; Hani A Awad; Matthew J Hilton
Journal:  J Clin Invest       Date:  2016-03-07       Impact factor: 14.808

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