4.6 Article

The Antibacterial and Remineralization Effect of Silver-Containing Mesoporous Bioactive Glass Sealing and Er-YAG Laser on Dentinal Tubules Treated in a Streptococcus mutans Cultivated Environment

Journal

PHARMACEUTICALS
Volume 14, Issue 11, Pages -

Publisher

MDPI
DOI: 10.3390/ph14111124

Keywords

antibacterial; remineralization; Er-YAG laser; dentinal tubules; Streptococcus mutans; dentin hypersensitivity

Funding

  1. Ministry of Science and Technology, Taiwan [MOST 110-2221-E-037-004, MOST 110-2314-B-037-057]
  2. Kaohsiung Medical University Hospital, Taiwan
  3. Kaohsiung Medical University
  4. Changhua Christian Hospital
  5. Changhua Christian Medical Foundation, Taiwan [108-CCH-KMU-007]

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The study aimed to evaluate the remineralization and antibacterial effect of silver-containing mesoporous bioactive glass (MBG-Ag) sealing combined with Er:YAG laser irradiation on human demineralized dentin. Results showed that both MBG-Ag and Er:YAG laser have the ability to enhance remineralization and hydroxyapatite crystal precipitation, with superior treatment outcomes when combined.
The aim of this study was to evaluate the remineralization and antibacterial effect of silver-containing mesoporous bioactive glass (MBG-Ag) sealing combined with Er:YAG laser irradiation on human demineralized dentin specimens in a Streptococcus mutans cultivated environment. A total of 48 human dentin specimens were randomly divided into four groups. The characteristics of MBG-Ag and the occlusion efficiency of the dentinal tubules were analyzed using X-ray diffraction patterns, Fourier-transform infrared spectroscopy, scanning electron microscope images and energy dispersive X-ray spectroscopy. Moreover, the antibacterial activity against Streptococcus mutans was evaluated by colony formation assay. The results showed that the dentin specimens with Er:YAG laser irradiation can form a melted occlusion with a size of 3-4 mu m. MBG-Ag promoted the deposition of numerous crystal particles on the dentinal surface, reaching the deepest penetration depth of 70 mu m. The results suggested that both MBG-Ag and laser have the ability to enhance the remineralization and precipitation of hydroxyapatite crystals. While the results showed that MBG-Ag sealing combined with the thermomechanical subablation mode of Er:YAG laser irradiation-induced dense crystalline deposition, reaching a penetration depth of more than 300 mu m, silver nanoparticles without good absorption of the Er:YAG laser resulted in a heterogeneous radiated surface. Er:YAG laser irradiation with a low energy and pulse rate cannot completely inhibit the growth of S. mutans, but MBG-Ag sealing reached the bactericidal concentration. It was concluded that the simultaneous application of MBG-Ag sealing and Er:YAG laser treatment can prevent the drawbacks of their independent uses, resulting in a superior form of treatment for dentin hypersensitivity.

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