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Mechanically tunable, human mesenchymal stem cell viable poly(ethylene glycol)–oxime hydrogels with invariant precursor composition, concentration, and stoichiometry

Publication ,  Journal Article
Dilla, RA; Motta, CMM; Xu, Y; Zander, ZK; Bernard, N; Wiener, CG; Vogt, BD; Becker, ML
Published in: Materials Today Chemistry
March 1, 2019

Hydrogels are used widely for exploratory tissue engineering studies. However, currently, no hydrogel systems have been reported which exhibit a wide range of elastic modulus without changing precursor concentration, identity, or stoichiometry. Herein, ester- and amide-based poly(ethylene glycol) (PEG)–oxime hydrogels with tunable moduli (∼5–30 kPa) were synthesized with identical precursor mass fraction, stoichiometry, and concentration by varying the pH and buffer concentration of the gelation solution, exploiting the kinetics of oxime bond formation. The observed modulus range can be attributed to increasing amounts of network defects in slower forming gels, as confirmed by equilibrium swelling and small-angle neutron scattering (SANS) experiments. Finally, human mesenchymal stem cell (hMSC) viability was confirmed in these materials in a 24-h assay. While this was only an initial demonstration of the potential utility, the controlled variation in defect density and modulus is an important step forward in isolating system variables for hypothesis-driven biological investigations.

Duke Scholars

Published In

Materials Today Chemistry

DOI

EISSN

2468-5194

Publication Date

March 1, 2019

Volume

11

Start / End Page

244 / 252

Related Subject Headings

  • 4016 Materials engineering
  • 3403 Macromolecular and materials chemistry
  • 0912 Materials Engineering
  • 0303 Macromolecular and Materials Chemistry
 

Citation

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Dilla, R. A., Motta, C. M. M., Xu, Y., Zander, Z. K., Bernard, N., Wiener, C. G., … Becker, M. L. (2019). Mechanically tunable, human mesenchymal stem cell viable poly(ethylene glycol)–oxime hydrogels with invariant precursor composition, concentration, and stoichiometry. Materials Today Chemistry, 11, 244–252. https://doi.org/10.1016/j.mtchem.2018.11.003
Dilla, R. A., C. M. M. Motta, Y. Xu, Z. K. Zander, N. Bernard, C. G. Wiener, B. D. Vogt, and M. L. Becker. “Mechanically tunable, human mesenchymal stem cell viable poly(ethylene glycol)–oxime hydrogels with invariant precursor composition, concentration, and stoichiometry.” Materials Today Chemistry 11 (March 1, 2019): 244–52. https://doi.org/10.1016/j.mtchem.2018.11.003.
Dilla RA, Motta CMM, Xu Y, Zander ZK, Bernard N, Wiener CG, et al. Mechanically tunable, human mesenchymal stem cell viable poly(ethylene glycol)–oxime hydrogels with invariant precursor composition, concentration, and stoichiometry. Materials Today Chemistry. 2019 Mar 1;11:244–52.
Dilla, R. A., et al. “Mechanically tunable, human mesenchymal stem cell viable poly(ethylene glycol)–oxime hydrogels with invariant precursor composition, concentration, and stoichiometry.” Materials Today Chemistry, vol. 11, Mar. 2019, pp. 244–52. Scopus, doi:10.1016/j.mtchem.2018.11.003.
Dilla RA, Motta CMM, Xu Y, Zander ZK, Bernard N, Wiener CG, Vogt BD, Becker ML. Mechanically tunable, human mesenchymal stem cell viable poly(ethylene glycol)–oxime hydrogels with invariant precursor composition, concentration, and stoichiometry. Materials Today Chemistry. 2019 Mar 1;11:244–252.
Journal cover image

Published In

Materials Today Chemistry

DOI

EISSN

2468-5194

Publication Date

March 1, 2019

Volume

11

Start / End Page

244 / 252

Related Subject Headings

  • 4016 Materials engineering
  • 3403 Macromolecular and materials chemistry
  • 0912 Materials Engineering
  • 0303 Macromolecular and Materials Chemistry