Effect of cell density on osteoblastic differentiation and matrix degradation of biomimetic dense collagen scaffolds

被引:109
作者
Bitar, Malak [1 ,2 ]
Brown, Robert A. [3 ]
Salih, Vehid [1 ]
Kidane, Asmeret G. [4 ]
Knowles, Jonathan C. [1 ]
Nazhat, Showan N. [1 ,5 ]
机构
[1] UCL Eastman Dent Hosp, Div Biomat & Tissue Engn, London WC1X 8LD, England
[2] Swiss Fed Labs Mat Testing & Res EMPA, Mat Biol Interact Grp, CH-9014 St Gallen, Switzerland
[3] UCL Tissue Repair & Engn Ctr, Inst Orthopaed, London HA7 4LP, England
[4] Royal Free & Univ Coll Med Sch, Acad Div Surg & Intervent Sci, London NW3 2PF, England
[5] McGill Univ, Dept Min & Mat Engn, Montreal, PQ H3A 2B2, Canada
关键词
D O I
10.1021/bm701112w
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 [生物化学与分子生物学]; 081704 [应用化学];
摘要
Plastic compression of hyperhydrated collagen gels produces tissue-like scaffolds of enhanced biomechanical properties. By increasing collagen density, these scaffolds could be developed into highly Biomimetic cell-seeded templates. When utilizing three-dimensional (3-D) scaffold systems for tissue repair, and indeed when investigating the cytocompatibility of two-dimensional (2-D) surfaces, the cell seeding density is often overlooked. In this study, we investigated this potentially critical parameter using MG-63 cells seeded in the dense collagen scaffolds. This is conducted within the overall scope of developing these scaffolds for bone repair. Cell proliferation, osteoblastic differentiation, and matrix remodelling capacity in relation to various seeding densities, ranging from 10(5) to 10(8) cells/ml compressed collagen, were evaluated in vitro. This was performed using the AlamarBlue assay, quantitative polymerase chain reaction (qPCR), and tensile mechanical analysis respectively. Variations in cell seeding density significantly influenced cell proliferation where lower initial seeding density resulted in higher proliferation rates as a function of time in culture. Gene transcription levels for alkaline phosphatase (ALPL), runt-related transcription factor 2 (RUNX2), and osteonectin (SPARC) were also found to be dependent on the cell density. While ALPL transcription was down-regulated with culturing time for all seeding densities, there was an increase in RUNX2 and SPARC transcription, particularly for scaffolds with cell densities in the range 10(6)-10(7) cells/ml collagen. Furthermore, this range of seeding density affected cell capacity in conducting collagenous matrix degradation as established by analyzing matrix metalloproteinase 1 (MMP1) transcription and scaffold mechanical properties. This study has shown that the seeded cell population in the three-dimensional dense collagen scaffolds clearly affected the degree of osteoblastic cell proliferation, differentiation, and some aspects of matrix remodelling activity. The seeding density played a major role in influencing the corresponding cell differentiation and cell-matrix interaction.
引用
收藏
页码:129 / 135
页数:7
相关论文
共 41 条
[1]
Use of multiple unconfined compression for control of collagen gel scaffold density and mechanical properties [J].
Abou Neel, Ensanya A. ;
Cheema, Umber ;
Knowles, Jonathan C. ;
Brown, Robert A. ;
Nazhat, Showan N. .
SOFT MATTER, 2006, 2 (11) :986-992
[2]
Phagocytosis and remodeling of collagen matrices [J].
Abraham, Leah C. ;
Dice, J. Fred ;
Lee, Kyongbum ;
Kaplan, David L. .
EXPERIMENTAL CELL RESEARCH, 2007, 313 (05) :1045-1055
[3]
Balcerzak M, 2003, ACTA BIOCHIM POL, V50, P1019
[4]
Lack of growth inhibition or enhancement of gap junctional intercellular communication and connexin43 expression by beta-carotene in murine lung epithelial cells in vitro [J].
Banoub, RW ;
Fernstrom, M ;
Ruch, RJ .
CANCER LETTERS, 1996, 108 (01) :35-40
[5]
Soluble phosphate glasses: in vitro studies using human cells of hard and soft tissue origin [J].
Bitar, M ;
Salih, V ;
Mudera, V ;
Knowles, JC ;
Lewis, MP .
BIOMATERIALS, 2004, 25 (12) :2283-2292
[6]
Effect of multiple unconfined compression on cellular dense collagen scaffolds for bone tissue engineering [J].
Bitar, Malak ;
Salih, Vehid ;
Brown, Robert A. ;
Nazhat, Showan N. .
JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2007, 18 (02) :237-244
[7]
Boden SD, 1999, CLIN ORTHOP S, V367, P84
[8]
Botchwey EA, 2001, J BIOMED MATER RES, V55, P242
[9]
Born again bone: Tissue engineering for bone repair [J].
Braddock, M ;
Houston, P ;
Campbell, C ;
Ashcroft, P .
NEWS IN PHYSIOLOGICAL SCIENCES, 2001, 16 :208-213
[10]
Ultrarapid engineering of biomimetic materials and tissues: Fabrication of nano- and microstructures by plastic compression [J].
Brown, RA ;
Wiseman, M ;
Chuo, CB ;
Cheema, U ;
Nazhat, SN .
ADVANCED FUNCTIONAL MATERIALS, 2005, 15 (11) :1762-1770