Hyaluronic acid (HA) is a commonly used natural polymer for cell scaffolding. Modification by methacrylate allows it to be polymerized by free radicals via addition of an initiator, e.g., light-sensitive Irgacure, to form a methacrylated hyaluronic acid (MeHA) hydrogel. Light-activated crosslinking can be used to control the degree of polymerization, and sequential polymerization steps allow cells plated onto or in the hydrogel to initially feel a soft and then a stiff matrix. Here, the elastic modulus of MeHA hydrogels was systematically analyzed by atomic force microscopy (AFM) for a number of variables including duration of UV exposure, monomer concentration, and methacrylate functionalization. To determine how cells would respond to a specific two-step polymerization, NIH 3T3 fibroblasts were cultured on the stiffening MeHA hydrogels and found to reorganize their cytoskeleton and spread area upon hydrogel stiffening, consistent with cells originally cultured on substrates of the final elastic modulus.
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February 2016
Research-Article
Mechanical Characterization of a Dynamic and Tunable Methacrylated Hyaluronic Acid Hydrogel
Matthew G. Ondeck,
Matthew G. Ondeck
Material Science Program,
UC San Diego,
La Jolla, CA 92093
UC San Diego,
La Jolla, CA 92093
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Adam J. Engler
Adam J. Engler
Material Science Program,
UC San Diego,
La Jolla, CA 92093;
UC San Diego,
La Jolla, CA 92093;
Department of Bioengineering,
UC San Diego,
La Jolla, CA 92093;
UC San Diego,
La Jolla, CA 92093;
Search for other works by this author on:
Matthew G. Ondeck
Material Science Program,
UC San Diego,
La Jolla, CA 92093
UC San Diego,
La Jolla, CA 92093
Adam J. Engler
Material Science Program,
UC San Diego,
La Jolla, CA 92093;
UC San Diego,
La Jolla, CA 92093;
Department of Bioengineering,
UC San Diego,
La Jolla, CA 92093;
UC San Diego,
La Jolla, CA 92093;
1Corresponding author.
Manuscript received November 8, 2015; final manuscript received December 30, 2015; published online January 27, 2016. Editor: Victor H. Barocas.
J Biomech Eng. Feb 2016, 138(2): 021003 (6 pages)
Published Online: January 27, 2016
Article history
Received:
November 8, 2015
Revised:
December 30, 2015
Citation
Ondeck, M. G., and Engler, A. J. (January 27, 2016). "Mechanical Characterization of a Dynamic and Tunable Methacrylated Hyaluronic Acid Hydrogel." ASME. J Biomech Eng. February 2016; 138(2): 021003. https://doi.org/10.1115/1.4032429
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