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Mechanical Properties and Cell Compatibility of Agarose Hydrogels Containing Proteoglycan Mimetic Graft Copolymers. | LitMetric

Mechanical Properties and Cell Compatibility of Agarose Hydrogels Containing Proteoglycan Mimetic Graft Copolymers.

Biomacromolecules

School of Biomedical Engineering, ∥Department of Mechanical Engineering, and ⊥Department of Chemical and Biological Engineering, Colorado State University, 1370 Campus Delivery, Fort Collins, Colorado United States.

Published: July 2017

AI Article Synopsis

  • Proteoglycans play crucial roles in biological functions, and their breakdown can diminish these functions.
  • Researchers have developed nonprotein proteoglycan-mimetic graft copolymers that stabilize growth factors and avoid degradation by proteases.
  • The study investigates how different polysaccharide side chains impact the mechanical properties of hydrogels, with findings indicating that certain additives can negatively affect cell viability in hydrogels.

Article Abstract

Proteoglycans have vital biochemical and biomechanical functions. Their proteolytic degradation results in loss of these functions. We have previously reported nonprotein proteoglycan-mimetic graft copolymers that stabilize and deliver growth factors and are not subject to proteases. Here we expand our investigation of these proteoglycan mimics by also investigating their effects on hydrogel mechanical properties. Four polysaccharide side chains, chondroitin sulfate, heparin, dextran, and dextran sulfate, are each grafted to a hyaluronan backbone. The polysaccharides and graft copolymers are added to agarose hydrogels. Cyclic compression and stress relaxation tests reveal how the addition of the polysaccharides and graft copolymers influence hydrogel modulus. Cells encapsulated in agarose hydrogels containing chondroitin sulfate and the chondroitin sulfate graft copolymer have decreased cell viability and metabolic activity compared to cells in unmodified agarose hydrogels. These multifunctional additives can be used to improve both the biochemistry and biomechanics of materials, warranting further optimization to overcome the potentially negative effects these may have on cell viability and activity.

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Source
http://dx.doi.org/10.1021/acs.biomac.7b00643DOI Listing

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