Please wait a minute...
Frontiers of Materials Science

ISSN 2095-025X

ISSN 2095-0268(Online)

CN 11-5985/TB

邮发代号 80-974

2019 Impact Factor: 1.747

Frontiers of Materials Science  2012, Vol. 6 Issue (3): 250-258   https://doi.org/10.1007/s11706-012-0169-1
  RESEARCH ARTICLE 本期目录
Controlled release behaviors of chitosan/α, β- glycerophosphate thermo-sensitive hydrogels
Controlled release behaviors of chitosan/α, β- glycerophosphate thermo-sensitive hydrogels
Wei-Fang LIU1, Chuan-Zhen KANG1, Ming KONG1, Yang LI1, Jing SU1, An YI2, Xiao-Jie CHENG1(), Xi-Guang CHEN1()
1. College of Marine Life Science, Ocean University of China, Qingdao 266003, China; 2. The Affiliated Hospital of Medical College, Qingdao University, Qingdao 266001, China
 全文: PDF(555 KB)   HTML
Abstract

Chitosan/α, β-glycerophosphate (CS/α, β-GP) thermo-sensitive hydrogels presented flowable solution state at low temperature and semisolid hydrogel when the ambient temperature increased. In this research, different concentrations of metronidazole encapsulated, CS and α, β-GP, as well as different acid solvents, were chosen to evaluate their influences on the drug release behaviors from CS/α, β-GP hydrogels. It was found that there was a sustaining release during the first 3 h followed by a plateau. SEM images showed that drugs were located both on the surface and in the interior of hydrogels. The optimal preparation conditions of this hydrogel for drug release were as follows: 1.8% (w/v) CS in HAc solvent, 5.6% (w/v) α, β-GP and 5 g/L metronidazole encapsulation. Cytotoxicity evaluation found no toxic effect. In order to control the release rate, 2.5 g/L chitosan microspheres with spherical shape and smooth surface were incorporated, and it was found that the initial release process was alleviated, while drug concentration had no obvious effect on the release rate. It could be concluded that the metronidzole release behaviors could be optimized according to practical applications.

Key wordschitosan (CS)    glycerophosphate (GP)    thermo-sensitive hydrogel    controlled release    microsphere
收稿日期: 2012-02-09      出版日期: 2012-09-05
Corresponding Author(s): CHENG Xiao-Jie,Email:xjcheng@ouc.edu.cn (X.J.C.); CHEN Xi-Guang,Email:xgchen@ouc.edu.cn (X.G.C.)   
 引用本文:   
. Controlled release behaviors of chitosan/α, β- glycerophosphate thermo-sensitive hydrogels[J]. Frontiers of Materials Science, 2012, 6(3): 250-258.
Wei-Fang LIU, Chuan-Zhen KANG, Ming KONG, Yang LI, Jing SU, An YI, Xiao-Jie CHENG, Xi-Guang CHEN. Controlled release behaviors of chitosan/α, β- glycerophosphate thermo-sensitive hydrogels. Front Mater Sci, 2012, 6(3): 250-258.
 链接本文:  
https://academic.hep.com.cn/foms/CN/10.1007/s11706-012-0169-1
https://academic.hep.com.cn/foms/CN/Y2012/V6/I3/250
Fig.1  
SamplePreparation conditionsCharacteristics of CS/α, β-GP hydrogel
c(CS)/% w/vc(α, β-GP)/% w/vDiluted acid (0.1 mol/L)pHSol viscosity/(Pa·s)Gel viscosity/(Pa·s)
No. 11.55.6HCl6.487.84±0.13378.78±0.311
No. 21.85.6HCl6.663.01±0.09177.39±0.289
No. 32.05.6HCl6.720.98±0.03324.66±0.112
No. 41.82.8HCl5.913.91±0.04848.32±0.13
No. 51.85.6HCl6.662.87±0.04377.85±0.342
No. 61.88.4HCl7.033.89±0.04578.33±0.27
No. 71.811.2HCl7.189.42±0.08779.11±0.287
No. 81.85.6LAa)6.662.15±0.05168.73±0.311
No. 91.85.6HCl6.917.66±0.08587.58±0.364
No. 101.85.6HAc6.974.27±0.09076.45±0.325
Tab.1  
Fig.2  
Fig.3  
Fig.4  
Fig.5  
Fig.6  
Fig.7  
1 The Society for Healthcare Epidemiology of America and the Infectiouslogy. Accessed March22, 2010, 9:00 am
2 Goodman L G, Lisowski J M. Helicobacter pylori and the upper GI tract: A bug for all lesions. Hospital Formulary , 1991, 26(10): 792-800
3 Risbud M V, Hardikar A A, Bhat S V, . pH-sensitive freeze-dried chitosan - polyvinyl pyrrolidone hydrogels as controlled release system for antibiotic delivery. Journal of Controlled Release , 2000, 68(1): 23-30
4 Elzatahry A A, Eldin M S M. Preparation and characterization of metronidazole-loaded chitosan nanoparticles for drug delivery application. Polymers for Advanced Technologies , 2008, 19(12): 1787-1791
5 Chourasia M K, Jain S K. Design and development of multiparticulate system for targeted drug delivery to colon. Drug Delivery , 2004, 11(3): 201-207
6 Bhattarai N, Gunn J, Zhang M Q. Chitosan-based hydrogels for controlled, localized drug delivery. Advanced Drug Delivery Reviews , 2010, 62(1): 83-99
7 Chenite A, Chaput C, Wang D, . Novel injectable neutral solutions of chitosan form biodegradable gels in situ. Biomaterials , 2000, 21(21): 2155-2161
8 Kim S, Nishimoto S K, Bumgardner J D, . A chitosan/β-glycerophosphate thermo-sensitive gel for the delivery of ellagic acid for the treatment of brain cancer. Biomaterials , 2010, 31(14): 4157-4166
9 Molinaro G, Leroux J C, Damas J, . Biocompatibility of thermosensitive chitosan-based hydrogels: an in vivo experimental approach to injectable biomaterials. Biomaterials , 2002, 23(13): 2717-2722
10 Ruel-Gariépy E, Chenite A, Chaput C, . Characterization of thermosensitive chitosan gels for the sustained delivery of drugs. International Journal of Pharmaceutics , 2000, 203(1-2): 89-98
11 Roughley P, Hoemann C, DesRosiers E, . The potential of chitosan-based gels containing intervertebral disc cells for nucleus pulposus supplementation. Biomaterials , 2006, 27(3): 388-396
13 Kim S E, Park J H, Cho Y W, . Porous chitosan scaffold containing microspheres loaded with transforming growth factor-β1: implications for cartilage tissue engineering. Journal of Controlled Release , 2003, 91(3): 365-374
14 Wang L M, Stegemann J P. Thermogelling chitosan and collagen composite hydrogels initiated with β-glycerophosphate for bone tissue engineering. Biomaterials , 2010, 31(14): 3976-3985
15 Zhou H Y, Chen X G, Kong M, . Effect of molecular weight and degree of chitosan deacetylation on the preparation and characteristics of chitosan thermosensitive hydrogel as a delivery system. Carbohydrate Polymers , 2008, 73(2): 265-273
16 Tsai M L, Chang H W, Yu H C, . Effect of chitosan characteristics and solution conditions on gelationtemperatures of chitosan/2-glycerophosphate/ nanosilver hydrogels. Carbohydrate Polymers , 2011, 84(4): 1337-1343
17 Cho J, Heuzey M C, Bégin A, . Chitosan and glycerophosphate concentration dependence of solution behaviour and gel point using small amplitude oscillatory rheometry. Food Hydrocolloids , 2006, 20(6): 936-945
18 Zhao Q S, Cheng X J, Ji Q X, . Effect of organic and inorganic acids on chitosan/glycerophosphate thermosensitive hydrogel. Journal of Sol–Gel Science and Technology , 2009, 50(1): 111-118
19 Dang Q F, Yan J Q, Li J J, . Controlled gelation temperature, pore diameter and degradation of a highly porous chitosan-based hydrogel. Carbohydrate Polymers , 2011, 83(1): 171-178
20 Crompton K E, Prankerd R J, Paganin D M, . Morphology and gelation of thermosensitive chitosan hydrogels. Biophysical Chemistry , 2005, 117(1): 47-53
21 Crompton K E, Tomas D, Finkelstein D I, . Inflammatory response on injection of chitosan/GP to the brain. Journal of Materials Science: Materials in Medicine , 2006, 17(7): 633-639
22 Wu J, Su Z G, Ma G H. A thermo- and pH-sensitive hydrogel composed of quaternized chitosan/glycerophosphate. International Journal of Pharmaceutics , 2006, 315(1-2): 1-11
23 Cho J, Heuzey M-C, Bégin A, . Physical gelation of chitosan in the presence of β-glycerophosphate: The effect of temperature. Biomacromolecules , 2005, 6(6): 3267-3275
24 Chung Y M, Simmons K L, Gutowska A, . Sol–gel transition temperature of PLGA-g-PEG aqueous solutions. Biomacromolecules , 2002, 3(3): 511-516
25 Kang G D, Cheon S H, Khang G, . Thermosensitive poly(organophosphazene) hydrogels for a controlled drug delivery. European Journal of Pharmaceutics and Biopharmaceutics , 2006, 63(3): 340-346
26 Patil S B, Murthy R S. Preparation and in vitro evaluation of mucoadhesive chitosan microspheres of amlodipine besylate for nasal administration. Indian Journal of Pharmaceutical Sciences , 2006, 68(1): 64-67
27 American Society for Testing and Materials, 2000, ASTM F756-08: Standard Practice for Assessment of Hemolytic Properties of Materials
28 Ganji F, Abdekhodaie M J, Ramazani S A A. Gelation time and degradation rate of chitosan-based injectable hydrogel. Journal of Sol–Gel Science and Technology , 2007, 42(1): 47-53
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed