Application of decellularized bone matrix as a bioscaffold in bone tissue engineering

被引:98
作者
Amirazad, Halimeh
Dadashpour, Mehdi
Zarghami, Nosratollah
机构
[1] Department of Medical Biotechnology, Faculty of Advanced Medical Science, Tabriz University of Medical Sciences, Tabriz
[2] Department of Biotechnology, Faculty of Medicine, Semnan University of Medical Sciences, Semnan
[3] Biotechnology Research Center, Semnan University of Medical Sciences, Semnan
[4] Deparment of Medical Biochemistry, Faculty of Medicine, Istanbul Aydin Universioty, Istanbul
[5] Department of Clinical Biochemistry and Laboratory Medicine, Faculty of Medicine, Tabriz University of Medical Sciences, Tabriz
关键词
Decellularized extracellular matrix; Bioscaffold; Tissue engineering; Bone regeneration; EXTRACELLULAR-MATRIX; TERMINAL STERILIZATION; STEMNESS PRESERVATION; LONG-TERM; IN-VITRO; SCAFFOLD; PROLIFERATION; CARTILAGE; GRAFTS; REPAIR;
D O I
10.1186/s13036-021-00282-5
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Autologous bone grafts are commonly used as the gold standard to repair and regenerate diseased bones. However, they are strongly associated with postoperative complications, especially at the donor site, and increased surgical costs. In an effort to overcome these limitations, tissue engineering (TE) has been proposed as an alternative to promote bone repair. The successful outcome of tissue engineering depends on the microstructure and composition of the materials used as scaffold. Decellularized bone matrix-based biomaterials have been applied as bioscaffolds in bone tissue engineering. These biomaterials play an important role in providing the mechanical and physical microenvironment needed by cells to proliferate and survive. Decellularized extracellular matrix (dECM) can be used as a powder, hydrogel and electrospun scaffolds. These bioscaffolds mimic the native microenvironment due to their structure similar to the original tissue. The aim of this review is to highlight the bone decellularization techniques. Herein we discuss: (1) bone structure; (2) properties of an ideal scaffold; (3) the potential of decellularized bone as bioscaffolds; (4) terminal sterilization of decellularized bone; (5) cell removing confirmation in decellularized tissues; and (6) post decellularization procedures. Finally, the improvement of bone formation by dECM and the immunogenicity aspect of using the decellularized bone matrix are presented, to illustrate how novel dECM-based materials can be used as bioscaffold in tissue engineering. A comprehensive understanding of tissue engineering may allow for better incorporation of therapeutic approaches in bone defects allowing for bone repair and regeneration.
引用
收藏
页数:18
相关论文
共 116 条
[1]   Extracellular matrix networks in bone remodeling [J].
Alford, Andrea I. ;
Kozloff, Kenneth M. ;
Hankenson, Kurt D. .
INTERNATIONAL JOURNAL OF BIOCHEMISTRY & CELL BIOLOGY, 2015, 65 :20-31
[2]  
Amir Hossein AkbariZahmati., 2017, Internal Medicine and Medical Investigation Journal, V2, P76, DOI DOI 10.24200/IMMINV.V2I3.63
[3]   Bone tissue regeneration: biology, strategies and interface studies [J].
Ansari, Mojtaba .
PROGRESS IN BIOMATERIALS, 2019, 8 (04) :223-237
[4]   Nano-mechanical mapping of interdependent cell and ECM mechanics by AFM force spectroscopy [J].
Babu, Prem Kumar Viji ;
Rianna, Carmela ;
Mirastschijski, Ursula ;
Radmacher, Manfred .
SCIENTIFIC REPORTS, 2019, 9 (1)
[5]   Development and Assessment of a 3D-Printed Scaffold with rhBMP-2 for an Implant Surgical Guide Stent and Bone Graft Material: A Pilot Animal Study [J].
Bae, Ji Cheol ;
Lee, Jin-Ju ;
Shim, Jin-Hyung ;
Park, Keun-Ho ;
Lee, Jeong-Seok ;
Bae, Eun-Bin ;
Choi, Jae-Won ;
Huh, Jung-Bo .
MATERIALS, 2017, 10 (12)
[6]   3D Titania Nanofiber-Like Webs Induced by Plasma Ionization: A New Direction for Bioreactivity and Osteoinductivity Enhancement of Biomaterials [J].
Beigi, Mohammad-Hossein ;
Safaie, Naghmeh ;
Nasr-Esfahani, Mohammad-Hossein ;
Kiani, Amirkianoosh .
SCIENTIFIC REPORTS, 2019, 9 (1)
[7]   Characterization and distribution of mechanically competent mineralized tissue in micropores of β-tricalcium phosphate bone substitutes [J].
Bohner, Marc ;
Baroud, Gamal ;
Bernstein, Anke ;
Doebelin, Nicola ;
Galea, Laetitia ;
Hesse, Bernhard ;
Heuberger, Roman ;
Meille, Sylvain ;
Michel, Pascal ;
von Rechenberg, Brigitte ;
Sague, Jorge ;
Seeherman, Howard .
MATERIALS TODAY, 2017, 20 (03) :106-115
[8]   The use of a cartilage decellularized matrix scaffold for the repair of osteochondral defects: the importance of long-term studies in a large animal model [J].
Bolanos, R. A. Vindas ;
Cokelaere, S. M. ;
McDermott, J. M. Estrada ;
Benders, K. E. M. ;
Gbureck, U. ;
Plomp, S. G. M. ;
Weinans, H. ;
Groll, J. ;
van Weeren, P. R. ;
Malda, J. .
OSTEOARTHRITIS AND CARTILAGE, 2017, 25 (03) :413-420
[9]   SUCCESSFUL USE OF A PHYSIOLOGICALLY ACCEPTABLE ARTIFICIAL SKIN IN THE TREATMENT OF EXTENSIVE BURN INJURY [J].
BURKE, JF ;
YANNAS, IV ;
QUINBY, WC ;
BONDOC, CC ;
JUNG, WK .
ANNALS OF SURGERY, 1981, 194 (04) :413-428
[10]   Osteoblast and osteocyte: Games without frontiers [J].
Capulli, Mattia ;
Paone, Riccardo ;
Rucci, Nadia .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 2014, 561 :3-12