Effect of Silver Diamine Fluoride on Bacterial Biofilms—A Review including In Vitro and In Vivo Studies
Abstract
:1. Introduction
2. Materials and Methods
2.1. Eligibility Criteria
- (P)
- Participants in this systematic review are patients with bacterial biofilms. To include all relevant studies, the Boolean operator “OR” was used to combine different keywords related to bacterial biofilms, such as “biofilm”, “plaque” and “microbial colonies”.
- (I)
- The intervention consisted of Silver Diamine Fluoride (SDF). To ensure that all relevant studies on SDF were included in the review, the Boolean operator “OR” was used to combine different variations of the keyword, such as “silver diamine fluoride” or “AgF”.
- (C)
- The comparison consisted of control groups that compared SDF to other chemical compounds. To identify studies that compare SDF to other biomarkers/control groups, the Boolean operator “AND” was used to combine the intervention and comparison groups that were considered as interventions.
- (O)
- The outcome measures the effect of SDF on bacterial biofilms. To identify studies that measure the effect of SDF on bacterial biofilms, the Boolean operator “AND” was used to combine the intervention and outcome keywords.
2.2. Search Strategy
2.3. Data Extraction
2.4. Quality Assessment
2.5. Statistical Analysis
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
SDF | Silver diamine fluoride |
CHX | Chlorhexidine |
HA | Hydroxyapatite |
SDF-KI | Silver diamine fluoride + Potassium iodide |
AgNPs | Silver nanoparticles |
DW | Deionized water |
PAA | Polyacrylic acid (PAA) |
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PubMed: (“silver diamine fluoride” OR “SDF”) AND (“bacterial biofilms” OR “anti-bacterial agents”[MeSH Terms] OR “fluorides”[MeSH Terms] OR “dental caries”[MeSH Terms] OR “Streptococcus mutans”[MeSH Terms] OR “dental plaque”[MeSH Terms] OR “biofilms”[MeSH Terms]) AND English[lang] |
Web of Sciences: (“silver diamine fluoride” OR “SDF”) AND (“bacterial biofilms” OR “anti-bacterial agents” OR “fluorides” OR “dental caries” OR “Streptococcus mutans” OR “dental plaque” OR “biofilms”) AND Language: (English) |
Scopus: (“silver diamine fluoride” OR “SDF”) AND (“bacterial biofilms” OR “anti-bacterial agents” OR “fluorides” OR “dental caries” OR “Streptococcus mutans” OR “dental plaque” OR “biofilms”) AND (LIMIT-TO (DOCTYPE, “ar”) OR LIMIT-TO (DOCTYPE, “re”)) AND (LIMIT-TO (LANGUAGE, “English”)) |
ID and Year | Study Sample (n) | Objectives | Design | Assessment Drawn |
---|---|---|---|---|
Bao Ying et al. (2020) [38] | Five children | To evaluate the antibacterial performance of SDF in dentine biofilms | In vitro | Microbial diversity fell after SDF application. |
Ebtissam et al. (2019) [39] | Seventy dentin discs (made from extracted human teeth) | To evaluate the antibacterial performance of CHX and NaOCl as compared to SDF | Case control | SDF exhibited higher antibacterial efficacy as compared to the controls. |
Gerd et al. (2017) [40] | 100 samples of bovine dentin. | To evaluate the antibacterial performance of NaF and CHX as compared to SDF | In vitro | When compared to control, SDF dramatically reduced bacterial numbers. |
Jaivrat et al. (2019) [41] | 32 extracted human molars and 32 extracted human premolars | To evaluate the antibacterial performance of CHX, distilled water and PAA as compared to SDF | Case control | SDF-KI was deemed to be effective in eliminating S. mutans. |
Kausar et al. (2020) [42] | 35 Candida isolates | To evaluate the antifungal performance of SDF in isolation | In vitro | SDF appeared to successfully stop fungal filamentation even at extremely low doses, complementing its antibacterial activity |
Klanliang et al. (2022) [43] | 10 healthy individuals (aged between 26–31 years) | To evaluate the microbiological performance of SDF in dentine biofilms | In situ | Dental biofilm development was inhibited and the percentage of killed bacteria was enhanced when SDF was applied to demineralized dentin but only up to 4 days |
Maribasappa et al. (2019) [44] | 5 patients with carious lesions | To evaluate the antibacterial performance of SDF + potassium iodide (KI). | In vivo | In four of the five patients, SDF + KI totally stopped the growth of S. mutans |
May L. Mei et al. (2014) [45] | 12 primary upper-central carious incisors | To evaluate the physicochemical performance of SDF in carious teeth | Ex vivo | Clinical SDF application enhanced the levels of dentine remineralization |
May Lei et al. (2016) [46] | 6 premolars | To evaluate the antibacterial performance of SDF in two different types of restorations | In vitro | SDF application made both the types of restorations more resistant to subsequent caries. |
Mitwalli et al. (2019) [47] | 20 participants (who had at least one cervical carious lesion or soft cavitated root) | To evaluate the microbiological performance of SDF in carious lesions | In vitro | Several bacterium species showed a substantial decrease in relative abundance following SDF treatment. |
Najmeh et al. (2018) [48] | 45 extracted deciduous canines | To evaluate the antibacterial performance of fluorinated varnish as compared to SDF | In vitro | No significant differences between the antibacterial performance of both the compounds were observed |
Parand Sorkhdini et al. (2020) [49] | 90 human enamel samples | To evaluate the antibacterial performance of AgNO3, KF and water as compared to SDF | Case control | SDF performed on a similar parlance as DW and KF that SDF was compared with. |
Rima et al. (2020) [50] | Samples of bovine dentin divided into 3 groups | To evaluate the antifungal performance of SDF in isolation | In vitro | SDF appeared to successfully stop fungal filamentation even at extremely low doses, complementing its antibacterial activity |
Sunny et al. (2019) [51] | 159 active dentinal carious lesions from primary molars | To evaluate the antibacterial performance of AgF as compared to SDF | RCT | SDF performed on a similar parlance as NaF that SDF was compared to |
Vinson et al. (2018) [52] | S. mutans biofilm in six-well tissue culture plates | To evaluate the antibacterial performance of KI as compared to SDF | In vitro | SDF + KI performed with the highest efficacy, followerd by KI and SDF alone. |
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Mubaraki, H.; Ingle, N.A.; Baseer, M.A.; AlMugeiren, O.M.; Mubaraki, S.; Cicciù, M.; Minervini, G. Effect of Silver Diamine Fluoride on Bacterial Biofilms—A Review including In Vitro and In Vivo Studies. Biomedicines 2023, 11, 1641. https://doi.org/10.3390/biomedicines11061641
Mubaraki H, Ingle NA, Baseer MA, AlMugeiren OM, Mubaraki S, Cicciù M, Minervini G. Effect of Silver Diamine Fluoride on Bacterial Biofilms—A Review including In Vitro and In Vivo Studies. Biomedicines. 2023; 11(6):1641. https://doi.org/10.3390/biomedicines11061641
Chicago/Turabian StyleMubaraki, Hind, Navin Anand Ingle, Mohammad Abdul Baseer, Osamah M AlMugeiren, Sarah Mubaraki, Marco Cicciù, and Giuseppe Minervini. 2023. "Effect of Silver Diamine Fluoride on Bacterial Biofilms—A Review including In Vitro and In Vivo Studies" Biomedicines 11, no. 6: 1641. https://doi.org/10.3390/biomedicines11061641
APA StyleMubaraki, H., Ingle, N. A., Baseer, M. A., AlMugeiren, O. M., Mubaraki, S., Cicciù, M., & Minervini, G. (2023). Effect of Silver Diamine Fluoride on Bacterial Biofilms—A Review including In Vitro and In Vivo Studies. Biomedicines, 11(6), 1641. https://doi.org/10.3390/biomedicines11061641