Literature DB >> 26131318

Utility of tricalcium phosphate and osteogenic matrix cell sheet constructs for bone defect reconstruction.

Tomoyuki Ueha1, Manabu Akahane1, Takamasa Shimizu1, Yoshinobu Uchihara1, Yusuke Morita1, Naoya Nitta1, Akira Kido1, Yusuke Inagaki1, Kenji Kawate1, Yasuhito Tanaka1.   

Abstract

AIM: To determine the effects of transplanting osteogenic matrix cell sheets and beta-tricalcium phosphate (TCP) constructs on bone formation in bone defects.
METHODS: Osteogenic matrix cell sheets were prepared from bone marrow stromal cells (BMSCs), and a porous TCP ceramic was used as a scaffold. Three experimental groups were prepared, comprised of TCP scaffolds (1) seeded with BMSCs; (2) wrapped with osteogenic matrix cell sheets; or (3) both. Constructs were implanted into a femoral defect model in rats and bone growth was evaluated by radiography, histology, biochemistry, and mechanical testing after 8 wk.
RESULTS: In bone defects, constructs implanted with cell sheets showed callus formation with segmental or continuous bone formation at 8 wk, in contrast to TCP seeded with BMSCs, which resulted in bone non-union. Wrapping TCP constructs with osteogenic matrix cell sheets increased their osteogenic potential and resulting bone formation, compared with conventional bone tissue engineering TCP scaffolds seeded with BMSCs. The compressive stiffness (mean ± SD) values were 225.0 ± 95.7, 30.0 ± 11.5, and 26.3 ± 10.6 MPa for BMSC/TCP/Sheet constructs with continuous bone formation, BMSC/TCP/Sheet constructs with segmental bone formation, and BMSC/TCP constructs, respectively. The compressive stiffness of BMSC/TCP/Sheet constructs with continuous bone formation was significantly higher than those with segmental bone formation and BMSC/TCP constructs.
CONCLUSION: This technique is an improvement over current methods, such as TCP substitution, and is useful for hard tissue reconstruction and inducing earlier bone union in defects.

Entities:  

Keywords:  Bone marrow stromal cells; Bone regeneration; Calcium phosphate; Osteogenesis; Tissue engineering

Year:  2015        PMID: 26131318      PMCID: PMC4478634          DOI: 10.4252/wjsc.v7.i5.873

Source DB:  PubMed          Journal:  World J Stem Cells        ISSN: 1948-0210            Impact factor:   5.326


  35 in total

1.  Cellular control of tissue architectures using a three-dimensional tissue fabrication technique.

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Journal:  Biomaterials       Date:  2007-08-20       Impact factor: 12.479

2.  Engineering scaffold-free bone tissue using bone marrow stromal cell sheets.

Authors:  Dongyang Ma; Liling Ren; Yanpu Liu; Fulin Chen; Junrui Zhang; Zhenxun Xue; Tianqiu Mao
Journal:  J Orthop Res       Date:  2010-05       Impact factor: 3.494

3.  Repair of impaired myocardium by means of implantation of engineered autologous myoblast sheets.

Authors:  Imran A Memon; Yoshiki Sawa; Norihide Fukushima; Goro Matsumiya; Shigeru Miyagawa; Satoshi Taketani; Satoru K Sakakida; Haruhiko Kondoh; Alexey N Aleshin; Tatsuya Shimizu; Teruo Okano; Hikaru Matsuda
Journal:  J Thorac Cardiovasc Surg       Date:  2005-11       Impact factor: 5.209

4.  In vitro bone formation by rat marrow cell culture.

Authors:  H Ohgushi; Y Dohi; T Katuda; S Tamai; S Tabata; Y Suwa
Journal:  J Biomed Mater Res       Date:  1996-11

Review 5.  Stem cell technology and bioceramics: from cell to gene engineering.

Authors:  H Ohgushi; A I Caplan
Journal:  J Biomed Mater Res       Date:  1999

Review 6.  Genetic potential of interfacial guided osteogenesis in implant devices.

Authors:  A Letić-Gavrilović; R Scandurra; K Abe
Journal:  Dent Mater J       Date:  2000-06       Impact factor: 2.102

7.  Bone marrow-derived mesenchymal cells can rescue osteogenic capacity of devitalized autologous bone.

Authors:  Yasuaki Tohma; Hajime Ohgushi; Toru Morishita; Yoshiko Dohi; Mika Tadokoro; Yasuhito Tanaka; Yoshinori Takakura
Journal:  J Tissue Eng Regen Med       Date:  2008-01       Impact factor: 3.963

8.  Osteogenic matrix sheet-cell transplantation using osteoblastic cell sheet resulted in bone formation without scaffold at an ectopic site.

Authors:  Manabu Akahane; Akifumi Nakamura; Hajime Ohgushi; Hideki Shigematsu; Yoshiko Dohi; Yoshinori Takakura
Journal:  J Tissue Eng Regen Med       Date:  2008-06       Impact factor: 3.963

9.  In vivo osteogenic capability of human mesenchymal cells cultured on hydroxyapatite and on beta-tricalcium phosphate.

Authors:  Asako Matsushima; Noriko Kotobuki; Mika Tadokoro; Kenji Kawate; Hiroshi Yajima; Yoshinori Takakura; Hajime Ohgushi
Journal:  Artif Organs       Date:  2009-06       Impact factor: 3.094

10.  Indications for free vascularized fibular grafting for the treatment of osteonecrosis of the femoral head.

Authors:  Kenji Kawate; Hiroshi Yajima; Kazuya Sugimoto; Hiroshi Ono; Tetsuji Ohmura; Yasunori Kobata; Keiichi Murata; Koji Shigematsu; Kenji Kawamura; Ikuo Kawahara; Naoki Maegawa; Katsuya Tamai; Yoshinori Takakura; Susumu Tamai
Journal:  BMC Musculoskelet Disord       Date:  2007-08-08       Impact factor: 2.362

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  11 in total

1.  Calcium Concentration in Culture Medium as a Nondestructive and Rapid Marker of Osteogenesis.

Authors:  Yohei Tanikake; Manabu Akahane; Akira Furukawa; Yasuaki Tohma; Yusuke Inagaki; Tsutomu Kira; Yasuhito Tanaka
Journal:  Cell Transplant       Date:  2016-11-29       Impact factor: 4.064

2.  Effects of human urine-derived stem cells on the cementogenic differentiation of indirectly-cocultured periodontal ligament stem cells.

Authors:  Xiao Yang; Xue Xiong; Wenwen Zhou; Gang Feng; Yuanyuan Zhang; Hongwei Dai; Jianping Zhou
Journal:  Am J Transl Res       Date:  2020-02-15       Impact factor: 4.060

3.  Culturing bone marrow cells with dexamethasone and ascorbic acid improves osteogenic cell sheet structure.

Authors:  M Akahane; T Shimizu; T Kira; T Onishi; Y Uchihara; T Imamura; Y Tanaka
Journal:  Bone Joint Res       Date:  2016-11       Impact factor: 5.853

4.  Modifying oxygen tension affects bone marrow stromal cell osteogenesis for regenerative medicine.

Authors:  Yusuke Inagaki; Manabu Akahane; Takamasa Shimizu; Kazuya Inoue; Takuya Egawa; Tsutomu Kira; Munehiro Ogawa; Kenji Kawate; Yasuhito Tanaka
Journal:  World J Stem Cells       Date:  2017-07-26       Impact factor: 5.326

5.  Effect of cryopreservation on proliferation and differentiation of periodontal ligament stem cell sheets.

Authors:  Mengying Li; Cheng Feng; Xiuge Gu; Qin He; Fulan Wei
Journal:  Stem Cell Res Ther       Date:  2017-04-17       Impact factor: 6.832

Review 6.  Recent advances in cell sheet technology for bone and cartilage regeneration: from preparation to application.

Authors:  Yuezhi Lu; Wenjie Zhang; Jie Wang; Guangzheng Yang; Shi Yin; Tingting Tang; Chunhua Yu; Xinquan Jiang
Journal:  Int J Oral Sci       Date:  2019-05-21       Impact factor: 6.344

7.  Adipose-derived stem cell sheets accelerate bone healing in rat femoral defects.

Authors:  Yasuhisa Yoshida; Hidenori Matsubara; Xiang Fang; Katsuhiro Hayashi; Issei Nomura; Shuhei Ugaji; Tomo Hamada; Hiroyuki Tsuchiya
Journal:  PLoS One       Date:  2019-03-28       Impact factor: 3.240

Review 8.  The application of cell sheet engineering in the vascularization of tissue regeneration.

Authors:  Kathryn Moschouris; Negar Firoozi; Yunqing Kang
Journal:  Regen Med       Date:  2016-08-16       Impact factor: 3.806

9.  Osteogenesis of osteogenic matrix cell sheets preserved in culture medium in a rat model.

Authors:  Tsutomu Kira; Manabu Akahane; Noriko Ouji-Sageshima; Takamasa Shimizu; Tadanobu Onishi; Shohei Omokawa; Toshihiro Ito; Yasuhito Tanaka
Journal:  Cell Transplant       Date:  2018-07-17       Impact factor: 4.064

10.  Silicate/zinc-substituted strontium apatite coating improves the osteoinductive properties of β-tricalcium phosphate bone graft substitute.

Authors:  Hironori Sugimoto; Yusuke Inagaki; Akira Furukawa; Tsutomu Kira; Sachiko Kawasaki; Yoshinobu Uchihara; Manabu Akahane; Yasuhito Tanaka
Journal:  BMC Musculoskelet Disord       Date:  2021-08-09       Impact factor: 2.362

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