Frequency-Dependence of Mechanically Stimulated Osteoblastic Calcification in Tissue-Engineered Bone In Vitro

被引:11
|
作者
Tanaka, Shigeo M. [1 ]
Tachibana, Kohei [2 ]
机构
[1] Kanazawa Univ, Inst Nat & Environm Technol, Nat Sci & Technol, Kanazawa, Ishikawa 9201192, Japan
[2] Kanazawa Univ, Grad Sch Nat Sci & Technol, Kanazawa, Ishikawa 9201192, Japan
关键词
Mechanical stimulation; Frequency; Osteoblasts; Osteogenesis; In vitro; Collagen sponge; Tissue engineering; Regenerative medicine; CELLS; DIFFERENTIATION; PROLIFERATION; MATURATION; DEPOSITION; SCAFFOLDS; COLLAGEN; DENSITY; MARROW; STRAIN;
D O I
10.1007/s10439-014-1241-z
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The effect of mechanical stimulation on osteogenesis remains controversial, especially with respect to the loading frequency that maximizes osteogenesis. Mechanical stimulation at an optimized frequency may be beneficial for the bone tissue regeneration to promote osteoblastic calcification. The objective of this study was to investigate the frequency-dependent effect of mechanical loading on osteoblastic calcification in the tissue-engineered bones in vitro. Tissue-engineered bones were constructed by seeding rat osteoblasts into a type I collagen sponge scaffold at a cell density of 1600 or 24,000 cells/mm(3). Sinusoidal compressive deformation at the peak of 0.2% was applied to the tissue-engineered bones at 0.2, 2, 10, 20, 40, and 60 Hz for 3 min/day for 14 consecutive days. Optically-monitored calcium content started to increase on days 5-7 and reached the highest value at 2 Hz on day 14; however, no increase was observed at 0.2 Hz and in the control. Ash content measured after the mechanical stimulation also showed the highest at 2 Hz despite the differences in cell seeding density. It was concluded that mechanical stimulation at 2 Hz showed the highest promotional effect for osteogenesis in vitro among the frequencies selected in this study.
引用
收藏
页码:2083 / 2089
页数:7
相关论文
共 50 条
  • [21] Mechanically characterizing and stimulating tissue-engineered corneal stromal equivalent
    Liu, KK
    Yang, Y
    Ahearne, M
    Then, K
    El Haj, A
    INTERNATIONAL JOURNAL OF EXPERIMENTAL PATHOLOGY, 2005, 86 (03) : A29 - A30
  • [22] FORMATION OF TISSUE-ENGINEERED CONSTRUCT OF CARTILAGE IN VITRO
    Surguchenko, V. A.
    Ponomareva, A. S.
    Kirsanova, L. A.
    Bubentsova, G. N.
    Skaletskij, N. N.
    Sevastianov, V. I.
    VESTNIK TRANSPLANTOLOGII I ISKUSSTVENNYH ORGANOV, 2013, 15 (03): : 66 - 72
  • [24] Bilateral Orbitozygomatic Reconstruction With Tissue-Engineered Bone
    Taylor, Jesse A.
    JOURNAL OF CRANIOFACIAL SURGERY, 2010, 21 (05) : 1612 - 1614
  • [25] Tissue-engineered bone for maxillary sinus augmentation
    Schimming, R
    Schmelzeisen, R
    JOURNAL OF ORAL AND MAXILLOFACIAL SURGERY, 2004, 62 (06) : 724 - 729
  • [26] HUVEC for Prevascularization of Bone Tissue-Engineered Graft
    Kulneva, E. I.
    Korjikova, S. V.
    Teplyashin, A. S.
    JOURNAL OF BIOTECHNOLOGY, 2010, 150 : S96 - S97
  • [27] BONE DEFECT REPAIR WITH TISSUE-ENGINEERED CARTILAGE
    KIM, WS
    VACANTI, CA
    UPTON, J
    VACANTI, JP
    PLASTIC AND RECONSTRUCTIVE SURGERY, 1994, 94 (05) : 580 - 584
  • [28] An in vitro tissue-engineered model for osteochondral repair
    Peretti G.M.
    Buragas M.
    Scotti C.
    Mangiavini L.
    Sosio C.
    Giancamillo A.
    Domeneghini C.
    Fraschini G.
    Sport Sciences for Health, 2006, 1 (4) : 153 - 157
  • [29] Remodeling of tissue-engineered bone structures in vivo
    Hofmann, Sandra
    Hilbe, Monika
    Fajardo, Robert J.
    Hagenmueller, Henri
    Nuss, Katja
    Arras, Margarete
    Mueller, Ralph
    von Rechenberg, Brigitte
    Kaplan, David L.
    Merkle, Hans P.
    Meinel, Lorenz
    EUROPEAN JOURNAL OF PHARMACEUTICS AND BIOPHARMACEUTICS, 2013, 85 (01) : 119 - 129
  • [30] DEVELOPMENT OF A TISSUE-ENGINEERED CONSTRUCT FOR BONE REPAIR
    Sadasivan, S.
    Shaw, G.
    Murphy, M.
    Barry, F.
    OSTEOARTHRITIS AND CARTILAGE, 2015, 23 : A414 - A414