| Literature DB >> 27936714 |
Joseph E Brown, Stephen K Davidowski1, Dian Xu1, Peggy Cebe, David Onofrei2, Gregory P Holland2, David L Kaplan.
Abstract
The molecular interactions of silk materials plasticized using glycerol were studied, as these materials provide options for biodegradable and flexible protein-based systems. Plasticizer interactions with silk were analyzed by thermal, spectroscopic, and solid-state NMR analyses. Spectroscopic analysis implied that glycerol was hydrogen bonded to the peptide matrix, but may be displaced with polar solvents. Solid-state NMR indicated that glycerol induced β-sheet formation in the dried silk materials, but not to the extent of methanol treatment. Fast scanning calorimetry suggested that β-sheet crystal formation in silk-glycerol films appeared to be less organized than in the methanol treated silk films. We propose that glycerol may be simultaneously inducing and interfering with β-sheet formation in silk materials, causing some improper folding that results in less-organized silk II structures even after the glycerol is removed. This difference, along with trace residual glycerol, allows glycerol extracted silk materials to retain more flexibility than methanol processed versions.Entities:
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Year: 2016 PMID: 27936714 DOI: 10.1021/acs.biomac.6b01260
Source DB: PubMed Journal: Biomacromolecules ISSN: 1525-7797 Impact factor: 6.988