Scaffold-free cell sheet injection results in bone formation

被引:46
作者
Akahane, Manabu [1 ]
Shigematsu, Hideki [2 ]
Tadokoro, Mika [3 ]
Ueha, Tomoyuki [2 ]
Matsumoto, Tomohiro [3 ]
Tohma, Yasuaki [2 ]
Kido, Akira [2 ]
Imamura, Tomoaki [1 ]
Tanaka, Yasuhito [2 ]
机构
[1] Nara Med Univ, Sch Med, Dept Publ Hlth Hlth Management & Policy, Nara 6348521, Japan
[2] Nara Med Univ, Sch Med, Dept Orthopaed Surg, Nara 6348522, Japan
[3] Natl Inst Adv Ind Sci & Technol, Res Inst Cell Engn, Amagasaki, Hyogo 6610974, Japan
关键词
tissue engineering; cell sheet; mesenchymal stem cell (MSC); bone formation; scaffold-free; injectable bone; MESENCHYMAL STEM-CELLS; PLATELET-RICH PLASMA; TISSUE-ENGINEERED BONE; MARROW STROMAL CELLS; OSTEOGENIC DIFFERENTIATION; INJECTABLE BONE; AUTOLOGOUS BONE; GROWTH-FACTOR; TRANSPLANTATION; REPAIR;
D O I
10.1002/term.259
中图分类号
Q813 [细胞工程];
学科分类号
摘要
We previously reported a new cell transplantation method in which mesenchymal stem cells (MSCs) were cultured as cell sheets. The cultured MSC sheets showed high alkaline phosphatase (ALP) activities and osteocalcin (OC) contents. In the present study, we transplanted such sheets by injection to assess whether the injectable MSC sheets could form bone tissue at subcutaneous sites. At 4 weeks after the subcutaneous injection, the injected areas showed hard mass formation. Each mass consisted of newly formed bone, as evaluated by radiographic, histological and gene expression analyses as well as three-dimensional computed tomography (3D-CT). Histological analyses revealed extracellular bone matrix together with osteocytes and active osteoblasts. Real-time PCR analyses showed high ALP and OC mRNA expressions. We also injected the cell sheets into dead bone to determine whether the lost osteogenic potential could be rescued, and histological analyses revealed that the injected cell sheets supplied osteogenic potential to the dead bone. The present study clearly indicates that osteogenic MSC sheets can be transplanted via injection through a needle and that bone formation results in the injected areas. Owing to its usage of a needle for fabrication of in vivo bone tissue, this injection method can be applied as a minimally invasive approach for hard tissue reconstruction. Copyright (C) 2010 John Wiley & Sons, Ltd.
引用
收藏
页码:404 / 411
页数:8
相关论文
共 40 条
[11]   Remodeling of cortical bone allografts mediated by adherent rAAV-RANKL and VEGF gene therapy [J].
Ito, H ;
Koefoed, M ;
Tiyapatanaputi, P ;
Gromov, K ;
Goater, JJ ;
Carmouche, J ;
Zhang, XP ;
Rubery, PT ;
Rabinowitz, J ;
Samulski, RJ ;
Nakamura, T ;
Soballe, K ;
O'Keefe, RJ ;
Boyce, BF ;
Schwarz, EM .
NATURE MEDICINE, 2005, 11 (03) :291-297
[12]   Osteogenic potential of injectable tissue-engineered bone:: A comparison among autogenous bone, bone substitute (Bio-oss®), platelet-rich plasma, and tissue-engineered bone with respect to their mechanical properties and histological findings [J].
Ito, K ;
Yamada, Y ;
Nagasaka, T ;
Baba, S ;
Ueda, M .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2005, 73A (01) :63-72
[13]   Local high-capacity adenovirus-mediated mCTLA4lg and mCD40lg expression prolongs recombinant gene expression in skeletal muscle [J].
Jiang, ZL ;
Reay, D ;
Kreppel, F ;
Gambotto, A ;
Feingold, E ;
Kochanek, S ;
McCarthy, SA ;
Clemens, PR .
MOLECULAR THERAPY, 2001, 3 (06) :892-900
[14]   Tissue-engineered approach for the treatment of steroid-induced osteonecrosis of the femoral head: Transplantation of autologous mesenchymal stem cells cultured with beta-tricalcium phosphate ceramics and free vascularized fibula [J].
Kawate, Kenji ;
Yajima, Hiroshi ;
Ohgushi, Hajime ;
Kotobuki, Noriko ;
Sugimoto, Kazuya ;
Ohmura, Tetsuji ;
Kobata, Yasunori ;
Shigematsu, Koji ;
Kawamura, Kenji ;
Tamai, Katsuya ;
Takakura, Yoshinori .
ARTIFICIAL ORGANS, 2006, 30 (12) :960-962
[15]   A multi-center, randomized, clinical study to compare the effect and safety of autologous cultured osteoblast(Ossron™) injection to treat fractures [J].
Kim, Seok-Jung ;
Shin, Yong-Woon ;
Yang, Kyu-Hyun ;
Kim, Sang-Bum ;
Yoo, Moon-Jib ;
Han, Suk-Ku ;
Im, Soo-Ah ;
Won, Yoo-Dong ;
Sung, Yerl-Bo ;
Jeon, Taek-Soo ;
Chang, Cheong-Ho ;
Jang, Jae-Deog ;
Lee, Sae-Bom ;
Kim, Hyun-Cho ;
Lee, Soo-Young .
BMC MUSCULOSKELETAL DISORDERS, 2009, 10
[16]   Thermoresponsive terpolymeric films applicable for osteoblastic cell growth and noninvasive cell sheet harvesting [J].
Kim, YS ;
Lim, JY ;
Donahue, HJ ;
Lowe, TL .
TISSUE ENGINEERING, 2005, 11 (1-2) :30-40
[17]   Transplantation of marrow-derived mesenchymal stem cells and platelet-rich plasma during distraction osteogenesis - a preliminary result of three cases [J].
Kitoh, H ;
Kitakoji, T ;
Tsuchiya, H ;
Mitsuyama, H ;
Nakamura, H ;
Katoh, M ;
Ishiguro, N .
BONE, 2004, 35 (04) :892-898
[18]   Towards injectable cell-based tissue-engineered bone: The effect of different calcium phosphate microparticles and pre-culturing [J].
Kruyt, MC ;
Persson, C ;
Johansson, G ;
Dhert, WJA ;
de Bruijn, JD .
TISSUE ENGINEERING, 2006, 12 (02) :309-317
[19]   Tissue engineering in the cardiovascular system: Progress toward a tissue engineered heart [J].
Mann, BK ;
West, JL .
ANATOMICAL RECORD, 2001, 263 (04) :367-371
[20]   Repair of impaired myocardium by means of implantation of engineered autologous myoblast sheets [J].
Memon, IA ;
Sawa, Y ;
Fukushima, N ;
Matsumiya, G ;
Miyagawa, S ;
Taketani, S ;
Sakakida, SK ;
Kondoh, H ;
Aleshin, AN ;
Shimizu, T ;
Okano, T ;
Matsuda, H .
JOURNAL OF THORACIC AND CARDIOVASCULAR SURGERY, 2005, 130 (05) :1333-1341