Smart scaffolds in bone tissue engineering: A systematic review of literature

被引:106
作者
Motamedian, Saeed Reza [1 ]
Hosseinpour, Sepanta [2 ]
Ahsaie, Mitra Ghazizadeh [2 ]
Khojasteh, Arash [3 ]
机构
[1] Shahid Beheshti Univ Med Sci, Sch Dent, Res Inst Dent Sci, Tehran, Iran
[2] Shahid Beheshti Univ Med Sci, Sch Dent, Tehran, Iran
[3] Shahid Beheshti Univ Med Sci, Sch Dent, Dept Oral & Maxillofacial Surg, POB 19839, Tehran, Iran
关键词
Bone tissue engineering; Scaffold; Growth factor; Nanoparticle; Extracellular matrix;
D O I
10.4252/wjsc.v7.i3.657
中图分类号
Q813 [细胞工程];
学科分类号
摘要
AIM: To improve osteogenic differentiation and attachment of cells. METHODS: An electronic search was conducted in PubMed from January 2004 to December 2013. Studies which performed smart modifications on conventional bone scaffold materials were included. Scaffolds with controlled release or encapsulation of bioactive molecules were not included. Experiments which did not investigate response of cells toward the scaffold (cell attachment, proliferation or osteoblastic differentiation) were excluded. RESULTS: Among 1458 studies, 38 met the inclusion and exclusion criteria. The main scaffold varied extensively among the included studies. Smart modifications included addition of growth factors (group.-11 studies), extracellular matrix-like molecules (group.-13 studies) and nanoparticles (nano-HA) (group.-17 studies). In all groups, surface coating was the most commonly applied approach for smart modification of scaffolds. In group I, bone morphogenetic proteins were mainly used as growth factor stabilized on polycaprolactone (PCL). In group., collagen 1 in combination with PCL, hydroxyapatite (HA) and tricalcium phosphate were the most frequent scaffolds used. In the third group, nano-HA with PCL and chitosan were used the most. As variable methods were used, a thorough and comprehensible compare between the results and approaches was unattainable. CONCLUSION: Regarding the variability in methodology of these in vitro studies it was demonstrated that smart modification of scaffolds can improve tissue properties.
引用
收藏
页码:657 / 668
页数:12
相关论文
共 77 条
[1]   Improvement of porous β-TCP scaffolds with rhBMP-2 chitosan carrier film for bone tissue application [J].
Abarrategi, Ander ;
Moreno-Vicente, Carolina ;
Ramos, Viviana ;
Aranaz, Inmaculada ;
Sanz Casado, Jose Vicente ;
Lopez-Lacomba, Jose Luis .
TISSUE ENGINEERING PART A, 2008, 14 (08) :1305-1319
[2]   Growth factor delivery for tissue engineering [J].
Babensee, JE ;
McIntire, LV ;
Mikos, AG .
PHARMACEUTICAL RESEARCH, 2000, 17 (05) :497-504
[3]  
Behnia H., 2012, J DENT SCH S BEHESHT, V30, P143
[4]   Bone regeneration with a combination of nanocrystalline hydroxyapatite silica gel, platelet-rich growth factor, and mesenchymal stem cells: a histologic study in rabbit calvaria [J].
Behnia, Hossein ;
Khojasteh, Arash ;
Kiani, Mohammad Taghi ;
Khoshzaban, Ahad ;
Abbas, Fatemeh Mashhadi ;
Bashtar, Maryam ;
Dashti, Seyedeh Ghazaleh .
ORAL SURGERY ORAL MEDICINE ORAL PATHOLOGY ORAL RADIOLOGY, 2013, 115 (02) :E7-E15
[5]   Repair of alveolar cleft defect with mesenchymal stem cells and platelet derived growth factors: A preliminary report [J].
Behnia, Hossein ;
Khojasteh, Arash ;
Soleimani, Masoud ;
Tehranchi, Azita ;
Atashi, Amir .
JOURNAL OF CRANIO-MAXILLOFACIAL SURGERY, 2012, 40 (01) :2-7
[6]   Secondary repair of alveolar clefts using human mesenchymal stem cells [J].
Behnia, Hossein ;
Khojasteh, Arash ;
Soleimani, Masoud ;
Tehranchi, Azita ;
Khoshzaban, Ahad ;
Keshel, Saeed Hidari ;
Atashi, Reza .
ORAL SURGERY ORAL MEDICINE ORAL PATHOLOGY ORAL RADIOLOGY AND ENDODONTOLOGY, 2009, 108 (02) :E1-E6
[7]   Bone morphogenetic proteins in tissue engineering: the road from laboratory to clinic, part II (BMP delivery) [J].
Bessa, P. C. ;
Casal, M. ;
Reis, R. L. .
JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2008, 2 (2-3) :81-96
[8]   Tissue engineered bone grafts based on biomimetic nanocomposite PLGA/amorphous calcium phosphate scaffold and human adipose-derived stem cells [J].
Buschmann, Johanna ;
Haerter, Luc ;
Gao, Shuping ;
Hemmi, Sonja ;
Welti, Manfred ;
Hild, Nora ;
Schneider, Oliver D. ;
Stark, Wendelin J. ;
Lindenblatt, Nicole ;
Werner, Clement M. L. ;
Wanner, Guido A. ;
Calcagni, Maurizio .
INJURY-INTERNATIONAL JOURNAL OF THE CARE OF THE INJURED, 2012, 43 (10) :1689-1697
[9]   Combined Angiogenic and Osteogenic Factor Delivery for Bone Regenerative Engineering [J].
Cui, Quanjun ;
Dighe, Abhijit S. ;
Irvine, James N., Jr. .
CURRENT PHARMACEUTICAL DESIGN, 2013, 19 (19) :3374-3383
[10]   Osteogenic evaluation of calcium/magnesium-doped mesoporous silica scaffold with incorporation of rhBMP-2 by synchrotron radiation-based μCT [J].
Dai, Chenglong ;
Guo, Han ;
Lu, Jingxiong ;
Shi, Jianlin ;
Wei, Jie ;
Liu, Changsheng .
BIOMATERIALS, 2011, 32 (33) :8506-8517