New Techniques for Optimization of Surface Area and Porosity in Nanochitins and Nanochitosans

被引:19
作者
Muzzarelli, Riccardo A. A.
机构
[1] University of Ancona, Ancona
来源
CHITOSAN FOR BIOMATERIALS II | 2011年 / 244卷
关键词
Electrospinning; Nanochitin; Nanochitosan; Nanofibrils; CHITOSAN-GLUCAN COMPLEX; N-ACETYL GLUCOSAMINE; LOW-MOLECULAR-WEIGHT; ALPHA-CHITIN; MUCOR-ROUXII; CELL-WALL; NANOFIBERS; STABILIZATION; COMPOSITES; HYDROGELS;
D O I
10.1007/12_2011_140
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
This chapter outlines the beneficial activities of chitosan and then describes the earliest observations of the expanded structure of isolated chitosans from filamentous fungi, most notably cultivated Absidia coerulea. Fungal chitin-glucan complexes are currently being evaluated in animal models of atherosclerosis and obesity. Impressive advances in the reactivity of chitins and chitosans of various origins have been made possible by the isolation of nanofibrils with surface area as high as 700 m(2)/g by mechanically disassembling the structures occurring in vivo. These procedures lend themselves to easy scaling-up, in contrast to electrospinning that moreover often involves the use of dangerous solvents. By drying chitosan preparations with the aid of supercritical CO2, aerogels with surface area of 50-750 m(2)/g are obtained, and can be easily crosslinked with genipin in order to optimize the average pore size for the preparation of scaffolds of interest in orthopedics.
引用
收藏
页码:167 / 186
页数:20
相关论文
共 71 条
[21]   Preparation and Properties of α-Chitin-Whisker-Reinforced Hyaluronan-Gelatin Nanocomposite Scaffolds [J].
Hariraksapitak, Parintorn ;
Supaphol, Pitt .
JOURNAL OF APPLIED POLYMER SCIENCE, 2010, 117 (06) :3406-3418
[22]   Fibrillation of dried chitin into 10-20 nm nanofibers by a simple grinding method under acidic conditions [J].
Ifuku, Shinsuke ;
Nogi, Masaya ;
Yoshioka, Masafumi ;
Morimoto, Minoru ;
Yano, Hiroyuki ;
Saimoto, Hiroyuki .
CARBOHYDRATE POLYMERS, 2010, 81 (01) :134-139
[23]   Acetylation of Chitin Nanofibers and their Transparent Nanocomposite Films [J].
Ifuku, Shinsuke ;
Morooka, Shin ;
Morimoto, Minoru ;
Saimoto, Hiroyuki .
BIOMACROMOLECULES, 2010, 11 (05) :1326-1330
[24]   Preparation of Chitin Nanofibers with a Uniform Width as α-Chitin from Crab Shells [J].
Ifuku, Shinsuke ;
Nogi, Masaya ;
Abe, Kentaro ;
Yoshioka, Masafumi ;
Morimoto, Minoru ;
Saimoto, Hiroyuki ;
Yano, Hiroyuki .
BIOMACROMOLECULES, 2009, 10 (06) :1584-1588
[25]   Isolation of the chitin-glucan complex from the fruiting bodies of mycothallus [J].
Ivshina, T. N. ;
Artamonova, S. D. ;
Ivshin, V. P. ;
Sharnina, F. F. .
APPLIED BIOCHEMISTRY AND MICROBIOLOGY, 2009, 45 (03) :313-318
[26]   Novel chitin and chitosan nanofibers in biomedical applications [J].
Jayakumar, R. ;
Prabaharan, M. ;
Nair, S. V. ;
Tamura, H. .
BIOTECHNOLOGY ADVANCES, 2010, 28 (01) :142-150
[27]   Stabilization of proteins in dry powder formulations using supercritical fluid technology [J].
Jovanovic, N ;
Bouchard, A ;
Hofland, GW ;
Witkamp, GJ ;
Crommelin, DJA ;
Jiskoot, W .
PHARMACEUTICAL RESEARCH, 2004, 21 (11) :1955-1969
[28]   Fabrication of α-chitin whisker-reinforced poly(vinyl alcohol) nanocomposite nanofibres by electrospinning [J].
Junkasem, Jirawut ;
Rujiravanit, Ratana ;
Supaphol, Pitt .
NANOTECHNOLOGY, 2006, 17 (17) :4519-4528
[29]   The effect of chitosan (poly-N-acetyl glucosamine) on lingual hemostasis in heparinized rabbits [J].
Klokkevold, PR ;
Fukayama, H ;
Sung, EC ;
Bertolami, CN .
JOURNAL OF ORAL AND MAXILLOFACIAL SURGERY, 1999, 57 (01) :49-52
[30]   Correlation of Chitosan's Rheological Properties and Its Ability to Electrospin [J].
Klossner, Rebecca R. ;
Queen, Hailey A. ;
Coughlin, Andrew J. ;
Krause, Wendy E. .
BIOMACROMOLECULES, 2008, 9 (10) :2947-2953