Self-assembling Peptide Scaffolds Promote Enamel Remineralization
Самосборные пептидные каркасы способствуют реминерализации эмали
2007-05-01
SCID: 54.1/9kaqcs6q
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beta-sheet-forming peptidesenamel remineralizationhydroxyapatite nucleationpeptide scaffoldsself-assembling peptides
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Abstract (AI)
Rationally designed beta-sheet-forming peptides that spontaneously form three-dimensional fibrillar scaffolds in response to specific environmental triggers may potentially be used in skeletal tissue engineering, including the treatment/prevention of dental caries, via bioactive surface groups. We hypothesized that infiltration of caries lesions with monomeric low-viscosity peptide solutions would be followed by in situ polymerization triggered by conditions of pH and ionic strength, providing a biomimetic scaffold capable of hydroxyapatite nucleation, promoting repair. Our aim was to determine the effect of an anionic peptide applied to caries-like lesions in human dental enamel under simulated intra-oral conditions of pH cycling. Peptide treatment significantly increased net mineral gain by the lesions, due to both increased remineralization and inhibition of demineralization over a five-day period. The assembled peptide was also capable of inducing hydroxyapatite nucleation de novo. The results suggest that self-assembling peptides may be useful in the modulation of mineral behavior during in situ dental tissue engineering.
Key Findings
1
Infiltration of caries-like enamel lesions with monomeric low-viscosity anionic peptide solutions followed by in situ polymerization provides a biomimetic scaffold capable of hydroxyapatite nucleation.
2
Peptide treatment significantly increased net mineral gain in human dental enamel lesions under simulated intra-oral pH cycling over five days.
3
Rationally designed beta-sheet-forming peptides can spontaneously form three-dimensional fibrillar scaffolds in response to pH and ionic strength triggers.
4
The assembled peptide was capable of inducing de novo hydroxyapatite nucleation, supporting its potential for in situ dental tissue engineering.
5
The observed net mineral gain resulted from both increased remineralization and inhibition of demineralization during the five-day period.
Research Object
An anionic self-assembling beta-sheet-forming peptide scaffold applied to caries-like human dental enamel lesions under simulated intra-oral pH-cycling conditions
Research Subject
The peptide scaffold's effect on enamel mineral behavior, specifically promoting hydroxyapatite nucleation, increasing net remineralization and inhibiting demineralization of caries-like lesions over a five-day pH-cycling period
Publication Details
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2007-05-01
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