Cargando…

In Vitro Biofilm Formation on Zirconia Implant Surfaces Treated with Femtosecond and Nanosecond Lasers

(1) Background: The purpose of this study was to evaluate how a zirconia implant surface treated with laser technology affects the degree of biofilm formation. (2) Methods: Experimental titanium (Ti) disks were produced that were sandblasted with large grit and acid-etched (T), and they were compare...

Descripción completa

Detalles Bibliográficos
Autores principales: Bihn, Soo Kyum, Son, Keunbada, Son, Young-Tak, Dahal, Ram Hari, Kim, Shukho, Kim, Jungmin, Hwang, Jun Ho, Kwon, Sung-Min, Lee, Jong Hoon, Kim, Hyun Deok, Lee, Jae-Mok, Jin, Myoung-Uk, Lee, Kyu-Bok
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10607745/
https://www.ncbi.nlm.nih.gov/pubmed/37888151
http://dx.doi.org/10.3390/jfb14100486
_version_ 1785127614618271744
author Bihn, Soo Kyum
Son, Keunbada
Son, Young-Tak
Dahal, Ram Hari
Kim, Shukho
Kim, Jungmin
Hwang, Jun Ho
Kwon, Sung-Min
Lee, Jong Hoon
Kim, Hyun Deok
Lee, Jae-Mok
Jin, Myoung-Uk
Lee, Kyu-Bok
author_facet Bihn, Soo Kyum
Son, Keunbada
Son, Young-Tak
Dahal, Ram Hari
Kim, Shukho
Kim, Jungmin
Hwang, Jun Ho
Kwon, Sung-Min
Lee, Jong Hoon
Kim, Hyun Deok
Lee, Jae-Mok
Jin, Myoung-Uk
Lee, Kyu-Bok
author_sort Bihn, Soo Kyum
collection PubMed
description (1) Background: The purpose of this study was to evaluate how a zirconia implant surface treated with laser technology affects the degree of biofilm formation. (2) Methods: Experimental titanium (Ti) disks were produced that were sandblasted with large grit and acid-etched (T), and they were compared with zirconia (ZrO(2)) discs with a machined (M) surface topography; a hydrophilic surface topography with a femtosecond laser (HF); and a hydrophobic surface topography with a nanosecond laser (HN) (N = 12 per surface group). An in vitro three-species biofilm sample (Aggregatibacter actinomycetemcomitans (Aa), Porphyromonas gingivalis (Pg), Prevotella intermedia (Pi)) was applied to each disc type, and bacterial adhesion was assessed after 48 and 72 h of incubation using an anaerobic flow chamber model. Statistical significance was determined using the Kruskal–Wallis H test, with Bonferroni correction used for the post-hoc test (α = 0.05). (3) Results: Compared to the T group, the M group exhibited more than twice as many viable bacterial counts in the three-species biofilm samples (p < 0.05). In comparison to the T group, the HF group had significantly higher viable bacterial counts in certain biofilm samples at 48 h (Aa and Pi) and 72 h (Pi) (p < 0.05). The HN group had higher viable bacterial counts in Pi at 48 h (5400 CFU/mL, p < 0.05) than the T group (4500 CFU/mL), while showing significantly lower viable bacterial counts in Pg at both 48 (3010 CFU/mL) and 72 h (3190 CFU/mL) (p < 0.05). (4) Conclusions: The surface treatment method for zirconia discs greatly influences biofilm formation. Notably, hydrophobic surface treatment using a nanosecond laser was particularly effective at inhibiting Pg growth.
format Online
Article
Text
id pubmed-10607745
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-106077452023-10-28 In Vitro Biofilm Formation on Zirconia Implant Surfaces Treated with Femtosecond and Nanosecond Lasers Bihn, Soo Kyum Son, Keunbada Son, Young-Tak Dahal, Ram Hari Kim, Shukho Kim, Jungmin Hwang, Jun Ho Kwon, Sung-Min Lee, Jong Hoon Kim, Hyun Deok Lee, Jae-Mok Jin, Myoung-Uk Lee, Kyu-Bok J Funct Biomater Article (1) Background: The purpose of this study was to evaluate how a zirconia implant surface treated with laser technology affects the degree of biofilm formation. (2) Methods: Experimental titanium (Ti) disks were produced that were sandblasted with large grit and acid-etched (T), and they were compared with zirconia (ZrO(2)) discs with a machined (M) surface topography; a hydrophilic surface topography with a femtosecond laser (HF); and a hydrophobic surface topography with a nanosecond laser (HN) (N = 12 per surface group). An in vitro three-species biofilm sample (Aggregatibacter actinomycetemcomitans (Aa), Porphyromonas gingivalis (Pg), Prevotella intermedia (Pi)) was applied to each disc type, and bacterial adhesion was assessed after 48 and 72 h of incubation using an anaerobic flow chamber model. Statistical significance was determined using the Kruskal–Wallis H test, with Bonferroni correction used for the post-hoc test (α = 0.05). (3) Results: Compared to the T group, the M group exhibited more than twice as many viable bacterial counts in the three-species biofilm samples (p < 0.05). In comparison to the T group, the HF group had significantly higher viable bacterial counts in certain biofilm samples at 48 h (Aa and Pi) and 72 h (Pi) (p < 0.05). The HN group had higher viable bacterial counts in Pi at 48 h (5400 CFU/mL, p < 0.05) than the T group (4500 CFU/mL), while showing significantly lower viable bacterial counts in Pg at both 48 (3010 CFU/mL) and 72 h (3190 CFU/mL) (p < 0.05). (4) Conclusions: The surface treatment method for zirconia discs greatly influences biofilm formation. Notably, hydrophobic surface treatment using a nanosecond laser was particularly effective at inhibiting Pg growth. MDPI 2023-09-22 /pmc/articles/PMC10607745/ /pubmed/37888151 http://dx.doi.org/10.3390/jfb14100486 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Bihn, Soo Kyum
Son, Keunbada
Son, Young-Tak
Dahal, Ram Hari
Kim, Shukho
Kim, Jungmin
Hwang, Jun Ho
Kwon, Sung-Min
Lee, Jong Hoon
Kim, Hyun Deok
Lee, Jae-Mok
Jin, Myoung-Uk
Lee, Kyu-Bok
In Vitro Biofilm Formation on Zirconia Implant Surfaces Treated with Femtosecond and Nanosecond Lasers
title In Vitro Biofilm Formation on Zirconia Implant Surfaces Treated with Femtosecond and Nanosecond Lasers
title_full In Vitro Biofilm Formation on Zirconia Implant Surfaces Treated with Femtosecond and Nanosecond Lasers
title_fullStr In Vitro Biofilm Formation on Zirconia Implant Surfaces Treated with Femtosecond and Nanosecond Lasers
title_full_unstemmed In Vitro Biofilm Formation on Zirconia Implant Surfaces Treated with Femtosecond and Nanosecond Lasers
title_short In Vitro Biofilm Formation on Zirconia Implant Surfaces Treated with Femtosecond and Nanosecond Lasers
title_sort in vitro biofilm formation on zirconia implant surfaces treated with femtosecond and nanosecond lasers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10607745/
https://www.ncbi.nlm.nih.gov/pubmed/37888151
http://dx.doi.org/10.3390/jfb14100486
work_keys_str_mv AT bihnsookyum invitrobiofilmformationonzirconiaimplantsurfacestreatedwithfemtosecondandnanosecondlasers
AT sonkeunbada invitrobiofilmformationonzirconiaimplantsurfacestreatedwithfemtosecondandnanosecondlasers
AT sonyoungtak invitrobiofilmformationonzirconiaimplantsurfacestreatedwithfemtosecondandnanosecondlasers
AT dahalramhari invitrobiofilmformationonzirconiaimplantsurfacestreatedwithfemtosecondandnanosecondlasers
AT kimshukho invitrobiofilmformationonzirconiaimplantsurfacestreatedwithfemtosecondandnanosecondlasers
AT kimjungmin invitrobiofilmformationonzirconiaimplantsurfacestreatedwithfemtosecondandnanosecondlasers
AT hwangjunho invitrobiofilmformationonzirconiaimplantsurfacestreatedwithfemtosecondandnanosecondlasers
AT kwonsungmin invitrobiofilmformationonzirconiaimplantsurfacestreatedwithfemtosecondandnanosecondlasers
AT leejonghoon invitrobiofilmformationonzirconiaimplantsurfacestreatedwithfemtosecondandnanosecondlasers
AT kimhyundeok invitrobiofilmformationonzirconiaimplantsurfacestreatedwithfemtosecondandnanosecondlasers
AT leejaemok invitrobiofilmformationonzirconiaimplantsurfacestreatedwithfemtosecondandnanosecondlasers
AT jinmyounguk invitrobiofilmformationonzirconiaimplantsurfacestreatedwithfemtosecondandnanosecondlasers
AT leekyubok invitrobiofilmformationonzirconiaimplantsurfacestreatedwithfemtosecondandnanosecondlasers