Bacterial cellulose-based scaffold materials for bone tissue engineering

被引:205
作者
Torgbo, Selorm [1 ,2 ]
Sukyai, Prakit [1 ,3 ]
机构
[1] Kasetsart Univ, Fac Agroind, Dept Biotechnol, Biotechnol Biopolymers & Bioact Cpds Special Res, Bangkok 10900, Thailand
[2] Univ Dev Studies, Dept Biotechnol, Fac Agr, Tamale, Ghana
[3] Kasetsart Univ, Inst Adv Studies, Ctr Adv Studies Agr & Food, Bangkok, Thailand
关键词
Bacterial cellulose; Biomaterials; Bone regeneration; Nanoparticles; Tissue engineering; CALCIUM-DEFICIENT HYDROXYAPATITE; CURRENT INTERNATIONAL RESEARCH; IN-VIVO BIOCOMPATIBILITY; OF-THE-ART; MECHANICAL-PROPERTIES; POROUS HYDROXYAPATITE; PORE-SIZE; GLUCONACETOBACTER-HANSENII; OSTEOGENIC DIFFERENTIATION; STRUCTURAL MODIFICATION;
D O I
10.1016/j.apmt.2018.01.004
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The qualities of polymer based biomaterials in facilitating bone regeneration process through tissue engineering have attracted the attention of researchers. Biomaterials with properties that can be manipulated to mimic the three-dimensional architecture of extracellular matrix (ECM) of the native bone tissues, with mechanical properties required for scaffold, biodegradability, excellent biocompatibility and non-toxicity are required. The unique qualities of bacterial cellulose (BC) including biocompatibility, good mechanical strength, microporosity and biodegradability with its unique surface chemistry make it ideally suitable for bone regeneration applications. The ease of being manipulated to mimic any form and structure make it good scaffold biomaterial to incorporate other nanoparticles for cell proliferation and differentiation for timely osseointegration and bone ingrowth. This review detailed requirements of scaffold materials for bone tissue engineering, provides comprehensive knowledge and highlights of current research on bacterial cellulose composites used for tissue engineering and the potentials of bacterial cellulose for bone regeneration including other nanoparticles incorporated. (C) 2018 Elsevier Ltd. All rights reserved.
引用
收藏
页码:34 / 49
页数:16
相关论文
共 245 条
[1]   In vitro evaluation of alginate encapsulated adipose-tissue stromal cells for use as injectable bone graft substitute [J].
Abbah, S. A. ;
Lu, W. W. ;
Chan, D. ;
Cheung, K. M. C. ;
Liu, W. G. ;
Zhao, F. ;
Li, Z. Y. ;
Leong, J. C. Y. ;
Luk, K. D. K. .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2006, 347 (01) :185-191
[2]   Biomaterial strategies for engineering implants for enhanced osseointegration and bone repair [J].
Agarwal, Rachit ;
Garcia, Andres J. .
ADVANCED DRUG DELIVERY REVIEWS, 2015, 94 :53-62
[3]   Characterization of hydroxyapatite-coated bacterial cellulose scaffold for bone tissue engineering [J].
Ahn, Sung-Jun ;
Shin, Young Min ;
Kim, Se Eun ;
Jeong, Sung In ;
Jeong, Jin-Oh ;
Park, Jong-Seok ;
Gwon, Hui-Jeong ;
Seo, Da Eun ;
Nho, Young-Chang ;
Kang, Seong Soo ;
Kim, Chong-Yeal ;
Huh, Jung-Bo ;
Lim, Youn-Mook .
BIOTECHNOLOGY AND BIOPROCESS ENGINEERING, 2015, 20 (05) :948-955
[4]   Nano iron oxide-hydroxyapatite composite ceramics with enhanced radiopacity [J].
Ajeesh, M. ;
Francis, B. F. ;
Annie, John ;
Varma, P. R. Harikrishna .
JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2010, 21 (05) :1427-1434
[5]   Osteoinduction, osteoconduction and osseointegration [J].
Albrektsson, T ;
Johansson, C .
EUROPEAN SPINE JOURNAL, 2001, 10 (Suppl 2) :S96-S101
[6]  
ALBREKTSSON T, 1986, DENT CLIN N AM, V30, P151
[7]  
Albrektsson T., 2003, Clinical Periodontology and Implant Dentistry, V4th, P809
[8]  
Amorim Wander Lopes, 2009, Braz J Otorhinolaryngol, V75, P200
[9]  
[Anonymous], 2012, BONE REGENERATION
[10]  
[Anonymous], J R SOC INTERFACE