Applied Rheology as Tool for the Assessment of Chitosan Hydrogels for Regenerative Medicine

被引:24
作者
Sanchez-Cid, Pablo [1 ]
Jimenez-Rosado, Mercedes [2 ]
Alonso-Gonzalez, Maria [2 ]
Romero, Alberto [1 ]
Perez-Puyana, Victor [1 ]
机构
[1] Univ Seville, Fac Chem, Dept Chem Engn, Seville 41012, Spain
[2] Univ Seville, Higher Polytech Sch, Dept Chem Engn, Seville 41012, Spain
关键词
chitosan; hydrogel; soft tissue; regenerative medicine; pH change; thermal resistance; rheology; TISSUE; SCAFFOLDS;
D O I
10.3390/polym13132189
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
The regeneration of soft tissues that connect, support or surround other tissues is of great interest. In this sense, hydrogels have great potential as scaffolds for their regeneration. Among the different raw materials, chitosan stands out for being highly biocompatible, which, together with its biodegradability and structure, makes it a great alternative for the manufacture of hydrogels. Therefore, the aim of this work was to develop and characterize chitosan hydrogels. To this end, the most important parameters of their processing, i.e., agitation time, pH, gelation temperature and concentration of the biopolymer used were rheologically evaluated. The results show that the agitation time does not have a significant influence on hydrogels, whereas a change in pH (from 3.2 to 7) is a key factor for their formation. Furthermore, a low gelation temperature (4 degrees C) favors the formation of the hydrogel, showing better mechanical properties. Finally, there is a percentage of biopolymer saturation, from which the properties of the hydrogels are not further improved (1.5 wt.%). This work addresses the development of hydrogels with high thermal resistance, which allows their use as scaffolds without damaging their mechanical properties.
引用
收藏
页数:12
相关论文
共 30 条
  • [21] Removal of Cu2+ ions using hydrogels of chitosan, itaconic and methacrylic acid: FTIR, SEM/EDX, AFM, kinetic and equilibrium study
    Milosavljevic, Nedeljko B.
    Ristic, Mirjana D.
    Peric-Grujic, Aleksandra A.
    Filipovic, Jovanka M.
    Strbac, Svetlana B.
    Rakocevic, Zlatko Lj.
    Krusic, Melina T. Kalagasidis
    [J]. COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2011, 388 (1-3) : 59 - 69
  • [22] Rao M.G., 2014, SCI REVS CHEM COMMUN, V4, P61
  • [23] Biopolymers in Medical Implants: A Brief Review
    Rebelo, Rita
    Fernandes, Margarida
    Fangueiro, Raul
    [J]. 3RD INTERNATIONAL CONFERENCE ON NATURAL FIBERS: ADVANCED MATERIALS FOR A GREENER WORLD, ICNF 2017, 2017, 200 : 236 - 243
  • [24] Enzymes and biopolymers. The opportunity for the smart design of molecular delivery systems
    Rivero Berti, Ignacio
    Islan, German A.
    Castro, Guillermo R.
    [J]. BIORESOURCE TECHNOLOGY, 2021, 322
  • [25] Rodríguez-Pedroso A. T., 2009, Rev. Chapingo Ser.Hortic, V15, P307
  • [26] Tissue engineering from Adam to the zygote: historical reflections
    Schultheiss, D
    Bloom, DA
    Wefer, J
    Jonas, U
    [J]. WORLD JOURNAL OF UROLOGY, 2000, 18 (01) : 84 - 90
  • [27] Tariverdian T, 2019, WOODH PUBL SER BIOM, P189, DOI 10.1016/B978-0-08-102563-5.00010-1
  • [28] Tailoring the composition of hydrogel particles for the controlled delivery of phytopharmaceuticals
    Tsirigotis-Maniecka, Marta
    Szyk-Warszynska, Lilianna
    Maniecki, Lukasz
    Szczesna, Weronika
    Warszynski, Piotr
    Wilk, Kazimiera A.
    [J]. EUROPEAN POLYMER JOURNAL, 2021, 151
  • [29] Biopolymer-Based Hydrogels As Scaffolds for Tissue Engineering Applications: A Review
    Van Vlierberghe, S.
    Dubruel, P.
    Schacht, E.
    [J]. BIOMACROMOLECULES, 2011, 12 (05) : 1387 - 1408
  • [30] Highly temperature resistant cellulose nanofiber/polyvinyl alcohol hydrogel using aldehyde cellulose nanofiber as cross-linker
    Zhu, Longxiang
    Liu, Yun
    Jiang, Zhiming
    Sakai, Eiichi
    Qiu, Jianhui
    Zhu, Ping
    [J]. CELLULOSE, 2019, 26 (09) : 5291 - 5303