Literature DB >> 12728043

Effect of regional gene therapy with bone morphogenetic protein-2-producing bone marrow cells on spinal fusion in rats.

Jeffrey C Wang1, Linda E A Kanim, Stephen Yoo, Patricia A Campbell, Arnold J Berk, Jay R Lieberman.   

Abstract

BACKGROUND: Bone morphogenetic proteins (BMPs) are now being used as bone-graft substitutes to enhance spinal fusion. However, the large doses of BMP required to induce a spinal fusion in humans suggests that the delivery of these proteins should be improved. We used ex vivo adenoviral gene transfer to create BMP-2-producing bone marrow cells, and these autologous cells were found to induce a posterolateral fusion of the spine in syngeneic rats.
METHODS: Intertransverse spinal arthrodesis (L4 and L5) was attempted in ten groups of Lewis rats with 5 x 10 (6) BMP-2-producing rat bone marrow cells (Ad-BMP-2 cells), created through adenoviral gene transfer with guanidine hydrochloride-extracted demineralized bone matrix as a carrier (Group I); 5 x 10 (6) Ad-BMP-2 cells on a collagen sponge carrier (Group II); 10 micro g of recombinant BMP-2 (rhBMP-2) in a guanidine hydrochloride-extracted demineralized bone matrix carrier (Group III); 10 micro g of rhBMP-2 in a collagen sponge carrier (Group IV); autogenous iliac crest bone-grafting (Group V); 5 x 10 (6) beta-galactosidase-producing rat bone marrow cells, created through adenoviral gene transfer with guanidine hydrochloride-extracted demineralized bone matrix as a carrier (Group VI); decortication of the transverse processes alone (Group VII); 5 x 10 (6) uninfected rat bone marrow cells with a guanidine hydrochloride-extracted demineralized bone matrix carrier (Group VIII); guanidine hydrochloride-extracted demineralized bone matrix only (Group IX); or a collagen sponge alone (Group X). Each specimen underwent plain radiography, manual palpation, and histological analysis.
RESULTS: All spines in Groups I and II (BMP-2-producing bone marrow cells) and all spines in Groups III and IV were fused at four weeks postoperatively. In contrast, none of the spines in the other groups had fused at a minimum of eight weeks after implantation. Histological analysis of the specimens revealed that the spines that had received BMP-2-producing bone marrow cells (Groups I and II) were filled with coarse trabecular bone postoperatively, whereas those that had received rhBMP-2 (Groups III and IV) were filled with thin, lace-like trabecular bone. All of the other spines, including those that had been treated with autogenous iliac crest bone-grafting (Group V), produced little or no new bone.
CONCLUSION: BMP-2-producing bone marrow cells, created by adenoviral gene transfer, produce sufficient BMP to induce an intertransverse fusion in the rat spine model.

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Year:  2003        PMID: 12728043     DOI: 10.2106/00004623-200305000-00020

Source DB:  PubMed          Journal:  J Bone Joint Surg Am        ISSN: 0021-9355            Impact factor:   5.284


  35 in total

1.  Gene-modified adult stem cells regenerate vertebral bone defect in a rat model.

Authors:  Dmitriy Sheyn; Ilan Kallai; Wafa Tawackoli; Doron Cohn Yakubovich; Anthony Oh; Susan Su; Xiaoyu Da; Amir Lavi; Nadav Kimelman-Bleich; Yoram Zilberman; Ning Li; Hyun Bae; Zulma Gazit; Gadi Pelled; Dan Gazit
Journal:  Mol Pharm       Date:  2011-09-13       Impact factor: 4.939

2.  A comparison of commercially available demineralized bone matrix for spinal fusion.

Authors:  Jeffrey C Wang; A Alanay; Davies Mark; Linda E A Kanim; Pat A Campbell; Edgar G Dawson; Jay R Lieberman
Journal:  Eur Spine J       Date:  2007-01-05       Impact factor: 3.134

Review 3.  Application of stem cells in bone repair.

Authors:  Elaine Y L Waese; Rita A Kandel; Rita R Kandel; William L Stanford
Journal:  Skeletal Radiol       Date:  2008-01-12       Impact factor: 2.199

Review 4.  An update on bone substitutes for spinal fusion.

Authors:  Masashi Miyazaki; Hiroshi Tsumura; Jeffrey C Wang; Ahmet Alanay
Journal:  Eur Spine J       Date:  2009-03-12       Impact factor: 3.134

Review 5.  Current status of bone graft options for anterior interbody fusion of the cervical and lumbar spine.

Authors:  Anthony Minh Tien Chau; Lileane Liang Xu; Johnny Ho-Yin Wong; Ralph Jasper Mobbs
Journal:  Neurosurg Rev       Date:  2013-06-07       Impact factor: 3.042

6.  Periosteal progenitor cell fate in segmental cortical bone graft transplantations: implications for functional tissue engineering.

Authors:  Xinping Zhang; Chao Xie; Angela S P Lin; Hiromu Ito; Hani Awad; Jay R Lieberman; Paul T Rubery; Edward M Schwarz; Regis J O'Keefe; Robert E Guldberg
Journal:  J Bone Miner Res       Date:  2005-08-08       Impact factor: 6.741

Review 7.  Bone graft substitutes for spine fusion: A brief review.

Authors:  Ashim Gupta; Nitin Kukkar; Kevin Sharif; Benjamin J Main; Christine E Albers; Saadiq F El-Amin Iii
Journal:  World J Orthop       Date:  2015-07-18

8.  Delivery of lyophilized Nell-1 in a rat spinal fusion model.

Authors:  Weiming Li; Min Lee; Julie Whang; Ronald K Siu; Xinli Zhang; Chen Liu; Benjamin M Wu; Jeffrey C Wang; Kang Ting; Chia Soo
Journal:  Tissue Eng Part A       Date:  2010-09       Impact factor: 3.845

9.  Assessing mechanical integrity of spinal fusion by in situ endochondral osteoinduction in the murine model.

Authors:  Ashvin K Dewan; Rahul A Dewan; Nathan Calderon; Angie Fuentes; Zawaunyka Lazard; Alan R Davis; Michael Heggeness; John A Hipp; Elizabeth A Olmsted-Davis
Journal:  J Orthop Surg Res       Date:  2010-08-21       Impact factor: 2.359

10.  Micro-computed tomography-based three-dimensional kinematic analysis during lateral bending for spinal fusion assessment in a rat posterolateral lumbar fusion model.

Authors:  Tomonori Yamaguchi; Nozomu Inoue; Robert L Sah; Yu-Po Lee; Alexander P Taborek; Gregory M Williams; Timothy A Moseley; Won C Bae; Koichi Masuda
Journal:  Tissue Eng Part C Methods       Date:  2014-01-09       Impact factor: 3.056

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