3.8 Article

Tuneable Hybrid Hydrogels via Complementary Self-Assembly of a Bioactive Peptide with a Robust Polysaccharide

期刊

ACS BIOMATERIALS SCIENCE & ENGINEERING
卷 7, 期 7, 页码 3340-3350

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsbiomaterials.1c00675

关键词

self-assembling peptide; agarose; tunable scaffolds; biomimicry; biomaterials

资金

  1. St. Vincent's Hospital
  2. Melbourne Research Endowment Fund
  3. RMIT Research Stipend
  4. RMIT Engineering Scholarship
  5. Australian Government Research Training Program Scholarship
  6. NHMRC Dementia Research Leadership Fellowship [GNT1135687]

向作者/读者索取更多资源

This study demonstrates the use of low molecular weight gelator (LMWG) peptides and polysaccharides such as agarose in combination to enhance bio-mimicry of the extracellular matrix. The materials exhibit complementary properties of fibrous and bioactive cues, with significant changes in structural morphology depending on agarose concentration. This hybrid approach shows promise for tissue-specific biomaterial design for tissue engineering and 3D cell culture.
Synthetic materials designed for improved bio-mimicry of the extracellular matrix must contain fibrous, bioactive, and mechanical cues. Self-assembly of low molecular weight gelator (LMWG) peptides Fmoc-DIKVAV (Fmoc-aspartic acid-isoleucine-lysine-valine-alanine-valine) and Fmoc-FRGDF (Fmoc-phenylalanine-arginine-glycine-aspartic acid-phenylalanine) creates fibrous and bioactive hydrogels. Polysaccharides such as agarose are biocompatible, degradable, and non-toxic. Agarose and these Fmoc-peptides have both demonstrated efficacy in vitro and in vivo. These materials have complementary properties; agarose has known mechanics in the physiological range but is inert and would benefit from bioactive and topographical cues found in the fibrous, protein-rich extracellular matrix. Fmoc-DIKVAV and Fmoc-FRGDF are synthetic self-assembling peptides that present bioactive cues IKVAV and RGD designed from the ECM proteins laminin and fibronectin. The work presented here demonstrates that the addition of agarose to Fmoc-DIKVAV and Fmoc-FRGDF results in physical characteristics that are dependent on agarose concentration. The networks are peptide-dominated at low agarose concentrations, and agarose-dominated at high agarose concentrations, resulting in distinct changes in structural morphology. Interestingly, at mid-range agarose concentration, a hybrid network is formed with structural similarities to both peptide and agarose systems, demonstrating reinforced mechanical properties. Bioactive-LMWG polysaccharide hydrogels demonstrate controllable microenvironmental properties, providing the ability for tissue-specific biomaterial design for tissue engineering and 3D cell culture.

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