Scinovex
articleTop 1% cited

Regulation of Silk Material Structure by Temperature-Controlled Water Vapor Annealing

Biomacromolecules · 2011 · Vol. 12(5) · pp. 1686–1696
Xiao HuKaren ShmelevLin SunEun-Seok GilSang‐Hyug ParkPeggy CebeDavid L. Kaplan

Abstract

We present a simple and effective method to obtain refined control of the molecular structure of silk biomaterials through physical temperature-controlled water vapor annealing (TCWVA). The silk materials can be prepared with control of crystallinity, from a low content using conditions at 4 °C (α helix dominated silk I structure), to highest content of ∼60% crystallinity at 100 °C (β-sheet dominated silk II structure). This new physical approach covers the range of structures previously reported to govern crystallization during the fabrication of silk materials, yet offers a simpler, green chemistry, approach with tight control of reproducibility. The transition kinetics, thermal, mechanical, and biodegradation properties of the silk films prepared at different temperatures were investigated and compared by Fourier transform infrared spectroscopy (FTIR), differential scanning calorimetry (DSC), uniaxial tensile studies, and enzymatic degradation studies. The results revealed that this new physical processing method accurately controls structure, in turn providing control of mechanical properties, thermal stability, enzyme degradation rate, and human mesenchymal stem cell interactions. The mechanistic basis for the control is through the temperature-controlled regulation of water vapor to control crystallization. Control of silk structure via TCWVA represents a significant improvement in the fabrication of silk-based biomaterials, where control of structure-property relationships is key to regulating material properties. This new approach to control crystallization also provides an entirely new green approach, avoiding common methods that use organic solvents (methanol, ethanol) or organic acids. The method described here for silk proteins would also be universal for many other structural proteins (and likely other biopolymers), where water controls chain interactions related to material properties.

Silk-based biomaterials and applicationsBiochemical and Structural CharacterizationAntimicrobial Peptides and ActivitiesSILKCrystallinityCrystallizationFourier transform infrared spectroscopyDifferential scanning calorimetryChemical engineeringThermal stabilityAnnealing (glass)Materials scienceContact angle

MeSH terms

Calorimetry, Differential ScanningHumansTemperatureTensile StrengthWaterSpectroscopy, Fourier Transform InfraredSilkCell ProliferationMesenchymal Stem Cells

Funding

  • National Institutes of Health
  • Air Force Office of Scientific Research
Citations
629
FWCI
13.05
field-weighted impact
References
49
Percentile
99%
vs. same field & year
Citations per year
Cited by
Structures, mechanical properties and applications of silk fibroin materials
Progress in Polymer Science · 2015 · 1,160 citations
Materials fabrication from Bombyx mori silk fibroin
Nature Protocols · 2011 · 2,959 citations
Silk fibroin biomaterials for tissue regenerations
Advanced Drug Delivery Reviews · 2012 · 1,342 citations
References
Principles of polymer chemistry
Choice Reviews Online · 1995 · 15,274 citations
Structural characteristics and properties of the regenerated silk fibroin prepared from formic acid
International Journal of Biological Macromolecules · 2001 · 430 citations
Water-insoluble silk films with silk I structure
Acta Biomaterialia · 2009 · 632 citations
Principles of Polymer Chemistry.
Journal of the American Chemical Society · 1954 · 16,608 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.