Biomedical Exploitation of Chitin and Chitosan via Mechano-Chemical Disassembly, Electrospinning, Dissolution in Imidazolium Ionic Liquids, and Supercritical Drying

被引:150
作者
Muzzarelli, Riccardo A. A. [1 ]
机构
[1] Univ Ancona, I-60100 Ancona, Italy
关键词
chitin; chitosan; electrospinning; ionic liquids; nanofibrils; supercritical carbon dioxide; POLYAMIDE-6/CHITOSAN COMPOSITE NANOFIBERS; TISSUE ENGINEERING APPLICATIONS; ALPHA-CHITIN; METAL-IONS; SCAFFOLDS; DRUG; FABRICATION; DELIVERY; WHISKER; GELATIN;
D O I
10.3390/md9091510
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
Recently developed technology permits to optimize simultaneously surface area, porosity, density, rigidity and surface morphology of chitin-derived materials of biomedical interest. Safe and ecofriendly disassembly of chitin has superseded the dangerous acid hydrolysis and provides higher yields and scaling-up possibilities: the chitosan nanofibrils are finding applications in reinforced bone scaffolds and composite dressings for dermal wounds. Electrospun chitosan nanofibers, in the form of biocompatible thin mats and non-wovens, are being actively studied: composites of gelatin + chitosan + polyurethane have been proposed for cardiac valves and for nerve conduits; fibers are also manufactured from electrospun particles that self-assemble during subsequent freeze-drying. Ionic liquids (salts of alkylated imidazolium) are suitable as non-aqueous solvents that permit desirable reactions to occur for drug delivery purposes. Gel drying with supercritical CO2 leads to structures most similar to the extracellular matrix, even when the chitosan is crosslinked, or in combination with metal oxides of interest in orthopedics.
引用
收藏
页码:1510 / 1533
页数:24
相关论文
共 118 条
[1]   Coating Electrospun Chitosan Nanofibers with Polyelectrolyte Multilayers Using the Polysaccharides Heparin and N,N,N-Trimethyl Chitosan [J].
Almodovar, Jorge ;
Kipper, Matt J. .
MACROMOLECULAR BIOSCIENCE, 2011, 11 (01) :72-76
[2]   Synthesis and properties of chitosan-silica hybrid aerogels [J].
Ayers, MR ;
Hunt, AJ .
JOURNAL OF NON-CRYSTALLINE SOLIDS, 2001, 285 (1-3) :123-127
[3]   Nanocellulose Reinforced Chitosan Composite Films as Affected by Nanofiller Loading and Plasticizer Content [J].
Azeredo, Henriette M. C. ;
Mattoso, Luiz Henrique C. ;
Avena-Bustillos, Roberto J. ;
Ceotto Filho, Gino ;
Munford, Maximiliano L. ;
Wood, Delilalh ;
McHugh, Tara H. .
JOURNAL OF FOOD SCIENCE, 2010, 75 (01) :N1-N7
[4]   The safety of chitosan as a pharmaceutical excipient [J].
Baldrick, Paul .
REGULATORY TOXICOLOGY AND PHARMACOLOGY, 2010, 56 (03) :290-299
[5]   Examination of the α-Chitin Structure and Decrystallization Thermodynamics at the Nanoscale [J].
Beckham, Gregg T. ;
Crowley, Michael F. .
JOURNAL OF PHYSICAL CHEMISTRY B, 2011, 115 (15) :4516-4522
[6]   Generation of chitosan nanoporous structures for tissue engineering applications using a supercritical fluid assisted process [J].
Cardea, S. ;
Pisanti, P. ;
Reverchon, E. .
JOURNAL OF SUPERCRITICAL FLUIDS, 2010, 54 (03) :290-295
[7]   Surface Characterisation of Bioadhesive PLGA/Chitosan Microparticles Produced by Supercritical Fluid Technology [J].
Casettari, Luca ;
Castagnino, Enzo ;
Stolnik, Snjezana ;
Lewis, Andrew ;
Howdle, Steven M. ;
Illum, Lisbeth .
PHARMACEUTICAL RESEARCH, 2011, 28 (07) :1668-1682
[8]   Starch-based composites reinforced with novel chitin nanoparticles [J].
Chang, Peter R. ;
Jian, Ruijuan ;
Yu, Jiugao ;
Ma, Xiaofei .
CARBOHYDRATE POLYMERS, 2010, 80 (02) :420-425
[9]   Recent Advancement of Chitosan-Based Nanoparticles for Oral Controlled Delivery of Insulin and Other Therapeutic Agents [J].
Chaudhury, Anumita ;
Das, Surajit .
AAPS PHARMSCITECH, 2011, 12 (01) :10-20
[10]   Ionic liquid mediated auto-templating assembly of CaCO3-chitosan hybrid nanoboxes and nanoframes [J].
Chen, Anna ;
Luo, Zhiping ;
Akbulut, Mustafa .
CHEMICAL COMMUNICATIONS, 2011, 47 (08) :2312-2314