Search PubMed⌕ Search

Biomedical subjects

Yong-Hoon Choi

Publications and source records attributed to Yong-Hoon Choi.

2 recordsLinked to original sources

Effect of light-cure time of adhesive resin on the thickness of the oxygen-inhibited layer and the microtensile bond strength to dentin.

A thick oxygen-inhibited layer (OIL) on a cured adhesive layer (AL) is believed to result in both good adaptation of composite resin (CR) and high bond strength. A high degree of conversion (DC) of the AL is also needed for durable bonding. This study evaluated the hypothesis that increasing the DC by prolonging the light-curing time of adhesive bonding resin might decrease the bond strength of the adhesive to dentin because of the subsequent thinning of the OIL thickness. The OIL thickness and the DC of solvent-removed One Step and D/E bonding resin of All Bond 2 (Bisco, USA) were measured simultaneously with FT-NIR spectroscopy according to increasing light-cure times (10, 20, 30, and 60 s) so as to evaluate their effect on the microtensile bond strength. The bonded interfaces were evaluated using scanning electron microscopy. Excessive irradiation of light-curing adhesives increased the DC, but decreased the OIL thickness. When the OIL was significantly thin by curing the adhesives for 30 or 60 s, defects were observed at the interface between the AL and the CR, as well as at the interface between the AL and the hybrid layer. When the OIL was thick, free radicals from the overlying CR may have diffused into the unreacted monomer mixtures of the OIL, chemically connecting the cured AL and the newly curing composite. It was found that to obtain maximum dentin bond strength, light-curing adhesives should be cured for the irradiation time recommended by the manufacturer.

Dentin↗

A unique structural pattern shared by T-cell-activating and abscess-regulating zwitterionic polysaccharides.

In contrast to the conventional dogma that carbohydrates are poorly immunogenic T-cell-independent antigens, zwitterionic polysaccharides (ZPSs) can significantly stimulate T-cell proliferation and regulate abscess formation in bacterial infection. Despite their similar biological activities, ZPSs from various bacteria are greatly different in primary chemical compositions and building block linkages. To identify the common structural features that govern the peculiar immunologic activity of ZPSs, we have been determining three-dimensional structures of compositionally different ZPSs by NMR spectroscopy and molecular mechanics and dynamics calculations. We report here the conformation of type 1 capsular polysaccharide from the human pathogen Streptococcus pneumoniae (Sp1) to be a right-handed helix with repeated zwitterionically charged grooves. We also report the striking similarity between the structures of Sp1 and our previously determined PS A2 from Bacteroides fragilis. These results support our hypothesis that T-cell-activating ZPSs assume similar conformational and charge patterns that are recognized by specific receptors and that account for their common property as T-cell activators.

Abscess↗