Literature DB >> 21294971

An ectopic study of apatite-coated silk fibroin scaffolds seeded with AdBMP-2-modified canine bMSCs.

Kaige Lü1, Ling Xu, Lunguo Xia, Yilin Zhang, Xiuli Zhang, David L Kaplan, Xinquan Jiang, Fuqiang Zhang.   

Abstract

The present study was undertaken to evaluate ectopic new bone formation effects of apatite-coated silk fibroin scaffolds (mSS) seeded with adenovirus-mediated bone morphogenic protein-2 gene (AdBMP-2) transduced canine bone marrow stromal cells (bMSCs) in nude mice. In this study, bMSCs derived from canine were cultured and transduced with AdBMP-2 adenovirus-mediated enhanced green fluorescent protein gene (AdEGFP) in vitro. Osteogenic differentiation of bMSCs was determined by alkaline phosphatase (ALP) activity analysis, and the transcript levels for BMP-2, osteopontin (OPN), osteocalcin (OCN) and bone sialoprotein (BSP) genes via real-time quantitative PCR (RT-qPCR) analysis. The ectopic bone formation effects of mSS seeded with AdBMP-2-modified bMSCs were evaluated through histological and histomorphological analysis 4, 8 and 12 weeks post-operation in nude mice. ALP activity was statistically increased in the AdBMP-2 group, when compared with control groups. The mRNA expression of BMP-2, OPN, OCN and BSP was also statistically up-regulated 6 and 9 days after AdBMP-2 transduction. Significantly higher bone volume was achieved in AdBMP-2-transduced bMSCs/mSS constructs than that of AdEGFP-transduced bMSCs/mSS or bMSCs/mSS groups at 4, 8 and 12 weeks (P < 0.01). These results demonstrated that mSS seeded with AdBMP-2-transduced canine bMSCs can promote ectopic new bone formation and maturation in nude mice, suggesting the potential of this silk-scaffold-based tissue-engineered bone for further bone regeneration studies in canine models.

Entities:  

Mesh:

Substances:

Year:  2011        PMID: 21294971      PMCID: PMC3406182          DOI: 10.1163/092050610X552861

Source DB:  PubMed          Journal:  J Biomater Sci Polym Ed        ISSN: 0920-5063            Impact factor:   3.517


  53 in total

Review 1.  Cellular and molecular events during embryonic bone development.

Authors:  S P Bruder; A I Caplan
Journal:  Connect Tissue Res       Date:  1989       Impact factor: 3.417

2.  In vitro and in vivo studies of a bone morphogenetic protein-2 expressing adenoviral vector.

Authors:  Y Okubo; K Bessho; K Fujimura; T Iizuka; S I Miyatake
Journal:  J Bone Joint Surg Am       Date:  2001       Impact factor: 5.284

3.  Bone regeneration by modified gene-activated matrix: effectiveness in segmental tibial defects in rats.

Authors:  Masaki Endo; Shinji Kuroda; Hisatomo Kondo; Yutaka Maruoka; Keiichi Ohya; Shohei Kasugai
Journal:  Tissue Eng       Date:  2006-03

4.  Regeneration and enlargement of jaw bone using guided tissue regeneration.

Authors:  D Buser; U Brägger; N P Lang; S Nyman
Journal:  Clin Oral Implants Res       Date:  1990-12       Impact factor: 5.977

Review 5.  Silk-based biomaterials.

Authors:  Gregory H Altman; Frank Diaz; Caroline Jakuba; Tara Calabro; Rebecca L Horan; Jingsong Chen; Helen Lu; John Richmond; David L Kaplan
Journal:  Biomaterials       Date:  2003-02       Impact factor: 12.479

6.  Maxillary and mandibular reconstruction using calvarial bone grafts and Branemark implants: a preliminary report.

Authors:  M G Donovan; N C Dickerson; L J Hanson; R B Gustafson
Journal:  J Oral Maxillofac Surg       Date:  1994-06       Impact factor: 1.895

7.  Promotion of bone formation using highly pure porous beta-TCP combined with bone marrow-derived osteoprogenitor cells.

Authors:  Jian Dong; Toshimasa Uemura; Yoshio Shirasaki; Tetsuya Tateishi
Journal:  Biomaterials       Date:  2002-12       Impact factor: 12.479

8.  The inflammatory responses to silk films in vitro and in vivo.

Authors:  Lorenz Meinel; Sandra Hofmann; Vassilis Karageorgiou; Carl Kirker-Head; John McCool; Gloria Gronowicz; Ludwig Zichner; Robert Langer; Gordana Vunjak-Novakovic; David L Kaplan
Journal:  Biomaterials       Date:  2005-01       Impact factor: 12.479

9.  Gene therapy platform for bone regeneration using an exogenously regulated, AAV-2-based gene expression system.

Authors:  Yossi Gafni; Gadi Pelled; Yoram Zilberman; Gadi Turgeman; Florence Apparailly; Hagit Yotvat; Eithan Galun; Zulma Gazit; Christian Jorgensen; Dan Gazit
Journal:  Mol Ther       Date:  2004-04       Impact factor: 11.454

10.  Combinatorial gene therapy with BMP2/7 enhances cranial bone regeneration.

Authors:  J T Koh; Z Zhao; Z Wang; I S Lewis; P H Krebsbach; R T Franceschi
Journal:  J Dent Res       Date:  2008-09       Impact factor: 6.116

View more
  4 in total

Review 1.  Nanotechnology in bone tissue engineering.

Authors:  Graham G Walmsley; Adrian McArdle; Ruth Tevlin; Arash Momeni; David Atashroo; Michael S Hu; Abdullah H Feroze; Victor W Wong; Peter H Lorenz; Michael T Longaker; Derrick C Wan
Journal:  Nanomedicine       Date:  2015-03-16       Impact factor: 5.307

2.  High-Fat Diet/Low-Dose Streptozotocin-Induced Type 2 Diabetes in Rats Impacts Osteogenesis and Wnt Signaling in Bone Marrow Stromal Cells.

Authors:  Chao Qian; Chenyuan Zhu; Weiqiang Yu; Xinquan Jiang; Fuqiang Zhang
Journal:  PLoS One       Date:  2015-08-21       Impact factor: 3.240

3.  Stem Cell Implants for Cancer Therapy: TRAIL-Expressing Mesenchymal Stem Cells Target Cancer Cells In Situ.

Authors:  Michaela R Reagan; F Philipp Seib; Douglas W McMillin; Elizabeth K Sage; Constantine S Mitsiades; Sam M Janes; Irene M Ghobrial; David L Kaplan
Journal:  J Breast Cancer       Date:  2012-09-28       Impact factor: 3.588

4.  A novel in vivo platform for studying alveolar bone regeneration in rat.

Authors:  Joong-Hyun Kim; Ho-Jin Moon; Tae-Hyun Kim; Jong-Min Jo; Sung Hee Yang; Deboki Naskar; Subhas C Kundu; Wojciech Chrzanowski; Hae-Won Kim
Journal:  J Tissue Eng       Date:  2013-12-10       Impact factor: 7.813

  4 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.