Rheological Study of Physical Cross-Linked Quaternized Cellulose Hydrogels Induced by β-Glycerophosphate

被引:23
作者
You, Jun [1 ]
Zhou, Jinping [1 ]
Li, Qian [1 ]
Zhang, Lina [1 ]
机构
[1] Wuhan Univ, Dept Chem, Wuhan 430072, Peoples R China
基金
中国国家自然科学基金;
关键词
CHITOSAN; DELIVERY; GELS; GELATION; METHYLCELLULOSE; BEHAVIOR; FUTURE;
D O I
10.1021/la2046417
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
As a weak base, beta-glycerophosphate (beta-GP) was used to spontaneously initiate gelation of quaternized cellulose (QC) solutions at body temperature. The QC/beta-GP solutions are flowable below or at room temperature but gel rapidly under physiological conditions. In order to clarify the sol gel transition process of the QC/beta-GP systems, the complex was investigated by dynamic viscoelastic measurements. The shear storage modulus (G') and loss modulus (G '') as a function of (1) concentration of beta-GP (c(beta-Gp)), (2) concentration of QC (c(QC)), (3) degree of substitution (DS; i.e., the average number of substituted hydroxyl groups in the anhydroglucose unit) of QC, (4) viscosity-average molecular weight (M-eta) of QC, and (5) solvent medium were studied by the oscillatory rheology. The sol-gel transition temperature of QC/beta-GP solutions decreased with an increase of c(QC) and c(beta-GP), the M-eta of QC, and a decrease of the DS of QC and pH of the solvent. The sol-gel transition temperature and time could be easily controlled by adjusting the concentrations of QC and beta-GP, M-eta and DS of QC, and the solvent medium. Gels formed after heating were irreversible; i.e., after cooling to lower temperature they could not be dissolved to become liquid again. The aggregation and entanglement of QC chains, electrostatic interaction, and hydrogen bonding between QC and beta-GP were the main factors responsible for the irreversible sol-gel transition behavior of QC/beta-GP systems.
引用
收藏
页码:4965 / 4973
页数:9
相关论文
共 39 条
  • [1] [Anonymous], 1965, Eur. Polym. J, DOI DOI 10.1016/0014-3057(65)90041-8
  • [2] Injectable Multidomain Peptide Nanofiber Hydrogel as a Delivery Agent for Stem Cell Secretome
    Bakota, Erica L.
    Wang, Yin
    Danesh, Farhad R.
    Hartgerink, Jeffrey D.
    [J]. BIOMACROMOLECULES, 2011, 12 (05) : 1651 - 1657
  • [3] Structure and interactions in covalently and ionically crosslinked chitosan hydrogels for biomedical applications
    Berger, J
    Reist, M
    Mayer, JM
    Felt, O
    Peppas, NA
    Gurny, R
    [J]. EUROPEAN JOURNAL OF PHARMACEUTICS AND BIOPHARMACEUTICS, 2004, 57 (01) : 19 - 34
  • [4] Novel hyaluronic acid based supramolecular assemblies stabilized by multivalent specific interactions: Rheological behavior in aqueous solution
    Charlot, Aurelia
    Auzely-Velty, Rachel
    [J]. MACROMOLECULES, 2007, 40 (26) : 9555 - 9563
  • [5] Rheological characterisation of thermogelling chitosan/glycerol-phosphate solutions
    Chenite, A
    Buschmann, M
    Wang, D
    Chaput, C
    Kandani, N
    [J]. CARBOHYDRATE POLYMERS, 2001, 46 (01) : 39 - 47
  • [6] Novel injectable neutral solutions of chitosan form biodegradable gels in situ
    Chenite, A
    Chaput, C
    Wang, D
    Combes, C
    Buschmann, MD
    Hoemann, CD
    Leroux, JC
    Atkinson, BL
    Binette, F
    Selmani, A
    [J]. BIOMATERIALS, 2000, 21 (21) : 2155 - 2161
  • [7] Chitosan and glycerophosphate concentration dependence of solution behaviour and gel point using small amplitude oscillatory rheometry
    Cho, Jaepyoung
    Heuzey, Marie-Claude
    Begin, Andre
    Carreau, Pierre J.
    [J]. FOOD HYDROCOLLOIDS, 2006, 20 (06) : 936 - 945
  • [8] Physical gelation of chitosan in the presence of β-glycerophosphate:: The effect of temperature
    Cho, JY
    Heuzey, MC
    Bégin, A
    Carreau, PJ
    [J]. BIOMACROMOLECULES, 2005, 6 (06) : 3267 - 3275
  • [9] Injectable Block Copolymer Hydrogels: Achievements and Future Challenges for Biomedical Applications
    Cong Truc Huynh
    Minh Khanh Nguyen
    Lee, Doo Sung
    [J]. MACROMOLECULES, 2011, 44 (17) : 6629 - 6636
  • [10] Polylysine-functionalised thermoresponsive chitosan hydrogel for neural tissue engineering
    Crompton, K. E.
    Goud, J. D.
    Bellamkonda, R. V.
    Gengenbach, T. R.
    Finkelstein, D. I.
    Horne, M. K.
    Forsythe, J. S.
    [J]. BIOMATERIALS, 2007, 28 (03) : 441 - 449