共 23 条
Polymer Nanocarriers for Dentin Adhesion
被引:41
作者:
Osorio, R.
[1
]
Osorio, E.
[1
]
Medina-Castillo, A. L.
[2
]
Toledano, M.
[1
]
机构:
[1] Univ Granada, Colegio Maximo, Dent Sch, Granada 18017, Spain
[2] Univ Granada, Spin Off Enterprise, NanoMyP, Granada 18016, Spain
关键词:
remineralization;
zinc;
nanopolymers;
hybrid layer;
adhesives;
dental;
BIOACTIVE MICRO-FILLERS;
COLLAGEN DEGRADATION;
IN-VITRO;
REMINERALIZATION;
APATITE;
ZINC;
MINERALIZATION;
MICROSPHERES;
CEMENTS;
FUTURE;
D O I:
10.1177/0022034514551608
中图分类号:
R78 [口腔科学];
学科分类号:
1003 ;
摘要:
To obtain more durable adhesion to dentin, and to protect collagen fibrils of the dentin matrix from degradation, calcium- and phosphate-releasing particles have been incorporated into the dental adhesive procedure. The aim of the present study was to incorporate zinc-loaded polymeric nanocarriers into a dental adhesive system to facilitate inhibition of matrix metalloproteinases (MMPs)-mediated collagen degradation and to provide calcium ions for mineral deposition within the resin-dentin bonded interface. PolymP-nActive nanoparticles (nanoMyP) were zinc-loaded through 30-minute ZnCl2 immersion and tested for bioactivity by means of 7 days' immersion in simulated body fluid solution (the Kokubo test). Zinc-loading and calcium phosphate depositions were examined by scanning and transmission electron microscopy, elemental analysis, and x-ray diffraction. Nanoparticles in ethanol solution infiltrated into phosphoric-acid-etched human dentin and Single Bond (3M/ESPE) were applied to determine whether the nanoparticles interfered with bonding. Debonded sticks were analyzed by scanning electron microscopy. A metalloproteinase collagen degradation assay was also performed in resin-infiltrated dentin with and without nanoparticles, measuring C-terminal telopeptide of type I collagen (ICTP) concentration in supernatants, after 4 wk of immersion in artificial saliva. Numerical data were analyzed by analysis of variance (ANOVA) and Student-Newman-Keuls multiple comparisons tests (p < .05). Nanoparticles were effectively zinc-loaded and were shown to have a chelating effect, retaining calcium regardless of zinc incorporation. Nanoparticles failed to infiltrate demineralized intertubular dentin and remained on top of the hybrid layer, without altering bond strength. Calcium and phosphorus were found covering nanoparticles at the hybrid layer, after 24 h. Nanoparticle application in etched dentin also reduced MMP-mediated collagen degradation. Tested nanoparticles may be incorporated into dental adhesive systems to provide the appropriate environment in which dentin MMP collagen degradation is inhibited and mineral growth can occur.
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页码:1258 / 1263
页数:6
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