Cartilage tissue engineering of nasal septal chondrocyte-macroaggregates in human demineralized bone matrix

被引:12
|
作者
Liese, Juliane [1 ]
Marzahn, Ulrike [2 ]
El Sayed, Karym [2 ]
Pruss, Axel [3 ]
Haisch, Andreas [4 ]
Stoelzel, Katharina [5 ]
机构
[1] Goethe Univ Frankfurt, Dept Gen & Visceral Surg, D-60590 Frankfurt, Germany
[2] Biotechnology, Berlin, Germany
[3] Charite, Inst Transfus Med, Tissue Bank, D-10117 Berlin, Germany
[4] Otolaryngol Ctr Berlin, D-12203 Berlin, Germany
[5] Charite, Dept Otorhinolaryngol Head & Neck Surg, D-10117 Berlin, Germany
关键词
Tissue engineering; Human demineralized bone matrix; Cartilage; Chondrocyte-macroaggregates; GROWTH-FACTOR-I; CULTURE; PROTEIN; PERICHONDRIUM; PHENOTYPE; REDIFFERENTIATION; DIFFERENTIATION; CHONDROGENESIS; RECONSTRUCTION; PROLIFERATION;
D O I
10.1007/s10561-012-9322-4
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Tissue Engineering is an important method for generating cartilage tissue with isolated autologous cells and the support of biomaterials. In contrast to various gel-like biomaterials, human demineralized bone matrix (DBM) guarantees some biomechanical stability for an application in biomechanically loaded regions. The present study combined for the first time the method of seeding chondrocyte-macroaggregates in DBM for the purpose of cartilage tissue engineering. After isolating human nasal chondrocytes and creating a three-dimensional macroaggregate arrangement, the DBM was cultivated in vitro with the macroaggregates. The interaction of the cells within the DBM was analyzed with respect to cell differentiation and the inhibitory effects of chondrocyte proliferation. In contrast to chondrocyte-macroaggregates in the cell-DBM constructs, morphologically modified cells expressing type I collagen dominated. The redifferentiation of chondrocytes, characterized by the expression of type II collagen, was only found in low amounts in the cell-DBM constructs. Furthermore, caspase 3, a marker for apoptosis, was detected in the chondrocyte-DBM constructs. In another experimental setting, the vitality of chondrocytes as related to culture time and the amount of DBM was analyzed with the BrdU assay. Higher amounts of DBM tended to result in significantly higher proliferation rates of the cells within the first 48 h. After 96 h, the vitality decreased in a dose-dependent fashion. In conclusion, this study provides the proof of concept of chondrocyte-macroaggregates with DBM as an interesting method for the tissue engineering of cartilage. The as-yet insufficient redifferentiation of the chondrocytes and the sporadic initiation of apoptosis will require further investigations.
引用
收藏
页码:255 / 266
页数:12
相关论文
共 50 条
  • [21] Nasal chondrocytes and fibrin sealant for cartilage tissue engineering
    Vinatier, C.
    Gauthier, O.
    Masson, M.
    Malard, O.
    Moreau, A.
    Fellah, B. H.
    Bilban, M.
    Spaethe, R.
    Daculsi, G.
    Guicheux, J.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2009, 89A (01) : 176 - 185
  • [22] Engineering cartilage tissues with the shape of human nasal alar by using chondrocyte macroaggregate - Experiment study in rabbit model
    Wu, Wei
    Chen, Fulin
    Feng, Xue
    Liu, Yanpu
    Mao, Tianqiu
    JOURNAL OF BIOTECHNOLOGY, 2007, 130 (01) : 75 - 84
  • [23] Rapid Chondrocyte Isolation for Tissue Engineering Applications: The Effect of Enzyme Concentration and Temporal Exposure on the Matrix Forming Capacity of Nasal Derived Chondrocytes
    Vedicherla, Srujana
    Buckley, Conor Timothy
    BIOMED RESEARCH INTERNATIONAL, 2017, 2017
  • [24] Application of decellularized bone matrix as a bioscaffold in bone tissue engineering
    Amirazad, Halimeh
    Dadashpour, Mehdi
    Zarghami, Nosratollah
    JOURNAL OF BIOLOGICAL ENGINEERING, 2022, 16 (01)
  • [25] Septal Cartilage Tissue Engineering: New Horizons
    Greene, Jacqueline J.
    Watson, Deborah
    FACIAL PLASTIC SURGERY, 2010, 26 (05) : 396 - 404
  • [26] Reproducing the Biomechanical Environment of the Chondrocyte for Cartilage Tissue Engineering
    Statham, Patrick
    Jones, Elena
    Jennings, Louise M.
    Fermor, Hazel L.
    TISSUE ENGINEERING PART B-REVIEWS, 2022, 28 (02) : 405 - 420
  • [27] Baculovirus as a Gene Delivery Vector for Cartilage and Bone Tissue Engineering
    Lin, Chin-Yu
    Lu, Chia-Hsin
    Luo, Wen-Yi
    Chang, Yu-Han
    Sung, Li-Yu
    Chiu, Hsin-Yi
    Hu, Yu-Chen
    CURRENT GENE THERAPY, 2010, 10 (03) : 242 - 254
  • [28] Osteoinductive potential of small intestinal submucosa/demineralized bone matrix as composite scaffolds for bone tissue engineering
    Honsawek, Sittisak
    Bumrungpanichthaworn, Piyanuch
    Thanakit, Voranuch
    Kunrangseesomboon, Vachiraporn
    Muchmee, Supamongkon
    Ratprasert, Siriwimon
    Tangchainavaphum, Pruksapon
    Dechprapatsorn, Saran
    Prajuabtanyachat, Sittichok
    Suksamran, Apasri
    Rojchanawatsirivech, Apimit
    ASIAN BIOMEDICINE, 2010, 4 (06) : 913 - 922
  • [29] Tissue engineering and cell therapy of cartilage and bone
    Cancedda, R
    Dozin, B
    Giannoni, P
    Quarto, R
    MATRIX BIOLOGY, 2003, 22 (01) : 81 - 91
  • [30] Electrospun cartilage-derived matrix scaffolds for cartilage tissue engineering
    Garrigues, N. William
    Little, Dianne
    Sanchez-Adams, Johannah
    Ruch, David S.
    Guilak, Farshid
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2014, 102 (11) : 3998 - 4008