Preparation and fracture process of high strength hyaluronic acid hydrogels cross-linked by ethylene glycol diglycidyl ether
Autor: | Burak Tavsanli, Oguz Okay |
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Rok vydání: | 2016 |
Předmět: |
Chemical substance
Materials science Polymers and Plastics General Chemical Engineering 02 engineering and technology 010402 general chemistry 01 natural sciences Biochemistry law.invention chemistry.chemical_compound Magazine law Hyaluronic acid Materials Chemistry Environmental Chemistry Organic chemistry Ethylene glycol diglycidyl ether Aqueous solution General Chemistry 021001 nanoscience & nanotechnology 0104 chemical sciences Compressive strength chemistry Chemical engineering Self-healing hydrogels 0210 nano-technology Science technology and society |
Zdroj: | Reactive and Functional Polymers. 109:42-51 |
ISSN: | 1381-5148 |
DOI: | 10.1016/j.reactfunctpolym.2016.10.001 |
Popis: | We present a synthetic strategy to produce high-strength hydrogels based on hyaluronic acid, a unique biomacromolecule with distinctive biological functions. The hydrogels were prepared using a two-step procedure. In the first step, hyaluronic acid (HA) was chemically cross-linked in aqueous solutions using ethylene glycol diglycidyl ether (EGDE) under various experimental conditions. EGDE-cross-linked HA hydrogels containing 97-99% water were fragile, and ruptured when compressed to 25-51% strain under 0.02-0.15 MPa stresses. By applying the double-network approach in the second step, we were able to generate high strength HA/poly(N,N-dimethylacrylamide) double-network hydrogels containing 84-94% water. Tuning the ratio of the network components could result in hydrogels exhibiting a compressive modulus of 0.9 MPa that sustain 19.4 MPa compressive stresses, which are much larger than those reported before for the hydrogels derived from the methacrylated HA macromers. Thus, the hydrogels presented here are promising materials to make use the characteristics of HA in stress-bearing biomedical applications. Cyclic mechanical tests show irreversible stress-strain curves with a large hysteresis indicating that elastically effective cross-links of HA first-network are irreversibly destroyed under load by dissipating energy. This internal fracture of HA network together with the high mass ratio of the second to the first-network components are responsible for the extraordinary mechanical properties of the hydrogels. (C) 2016 Elsevier B.V. All rights reserved. |
Databáze: | OpenAIRE |
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