Nano-porous anodic alumina: fundamentals and applications in tissue engineering

被引:42
作者
Davoodi, Elham [1 ]
Zhianmanesh, Masoud [2 ]
Montazerian, Hossein [3 ]
Milani, Abbas S. [3 ]
Hoorfar, Mina [3 ]
机构
[1] Univ Waterloo, Dept Mech & Mechatron Engn, Waterloo, ON N2L 3G1, Canada
[2] Shahid Rajaee Teacher Training Univ, Dept Mech Engn, Shabanloo St, Tehran 16788, Iran
[3] Univ British Columbia, Sch Engn, Kelowna, BC V1V 1V7, Canada
关键词
MARROW STROMAL CELLS; NANOPOROUS ALUMINA; BIODEGRADABLE MATERIALS; SURFACE MODIFICATION; CARBON NANOTUBES; IN-VITRO; OSTEOGENIC DIFFERENTIATION; POLYMERIC SCAFFOLDS; OXIDE MEMBRANES; BONE-MARROW;
D O I
10.1007/s10856-020-06398-2
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Recently, nanomaterials have been widely utilized in tissue engineering applications due to their unique properties such as the high surface to volume ratio and diversity of morphology and structure. However, most methods used for the fabrication of nanomaterials are rather complicated and costly. Among different nanomaterials, anodic aluminum oxide (AAO) is a great example of nanoporous structures that can easily be engineered by changing the electrolyte type, anodizing potential, current density, temperature, acid concentration and anodizing time. Nanoporous anodic alumina has often been used for mammalian cell culture, biofunctionalization, drug delivery, and biosensing by coating its surface with biocompatible materials. Despite its wide application in tissue engineering, thorough in vivo and in vitro studies of AAO are still required to enhance its biocompatibility and thereby pave the way for its application in tissue replacements. Recognizing this gap, this review article aims to highlight the biomedical potentials of AAO for applications in tissue replacements along with the mechanism of porous structure formation and pore characteristics in terms of fabrication parameters.
引用
收藏
页数:16
相关论文
共 198 条
[21]  
Christenson C, 2020, LABEL FREE BIOMEDICA, V11251, p112512J
[22]   Morphological, mechanical, and biocompatibility characterization of macroporous alumina scaffolds coated with calcium phosphate/PVA [J].
Costa, Hermes S. ;
Mansur, Alexandra A. P. ;
Barbosa-Stancioli, Edel F. ;
Pereira, Marivalda M. ;
Mansur, Herman S. .
JOURNAL OF MATERIALS SCIENCE, 2008, 43 (02) :510-524
[23]   Drop-on-demand high-speed 3D printing of flexible milled carbon fiber/silicone composite sensors for wearable biomonitoring devices [J].
Davoodi, Elham ;
Fayazfar, Haniyeh ;
Liravi, Farzad ;
Jabari, Elahe ;
Toyserkani, Ehsan .
ADDITIVE MANUFACTURING, 2020, 32
[24]   3D-Printed Ultra-Robust Surface-Doped Porous Silicone Sensors for Wearable Biomonitoring [J].
Davoodi, Elham ;
Montazerian, Hossein ;
Haghniaz, Reihaneh ;
Rashidi, Armin ;
Ahadian, Samad ;
Sheikhi, Amir ;
Chen, Jun ;
Khademhosseini, Ali ;
Milani, Abbas S. ;
Hoorfar, Mina ;
Toyserkani, Ehsan .
ACS NANO, 2020, 14 (02) :1520-1532
[25]   Crack growth resistance of alumina, zirconia and zirconia toughened alumina ceramics for joint prostheses [J].
De Aza, AH ;
Chevalier, J ;
Fantozzi, G ;
Schehl, M ;
Torrecillas, R .
BIOMATERIALS, 2002, 23 (03) :937-945
[26]  
de Groot K., 1983, BIOCERAMICS CALCIUM
[27]   Engineering porous scaffolds using gas-based techniques [J].
Dehghani, Fariba ;
Annabi, Nasim .
CURRENT OPINION IN BIOTECHNOLOGY, 2011, 22 (05) :661-666
[28]  
Diaz-Lantada A., 2010, Journal of Physics: Conference Series, V252, DOI 10.1088/1742-6596/252/1/012003
[29]   Carbon nanomaterial-enhanced scaffolds for the creation of cardiac tissue constructs: A new frontier in cardiac tissue engineering [J].
Dozois, Matthew D. ;
Bahlmann, Laura C. ;
Zilberman, Yael ;
Tang, Xiaowu .
CARBON, 2017, 120 :338-349
[30]  
DUARTE ARC, 2013, INT MATER REV, V54, P214