Purpose: Peri-implantitis therapy and implant maintenance are fundamental practices to enhance the longevity of zirconia implants. However, the use of physical decontamination methods, including hand instruments, polishing devices, ultrasonic scalers, and laser systems, might damage the implant surfaces. The aim of this systematic review was to evaluate the effects of physical decontamination methods on zirconia implant surfaces.
Methods: A systematic search was conducted using 5 electronic databases: Ovid MEDLINE, PubMed, Scopus, Web of Science, and Cochrane. Hand searching of the OpenGrey database, reference lists, and 6 selected dental journals was also performed to identify relevant studies satisfying the eligibility criteria.
Results: Overall, 1049 unique studies were identified, of which 11 studies were deemed suitable for final review. Air-abrasive devices with glycine powder, prophylaxis cups, and ultrasonic scalers with non-metal tips were found to cause minimal to no damage to implant-grade zirconia surfaces. However, hand instruments and ultrasonic scalers with metal tips have the potential to cause major damage to zirconia surfaces. In terms of laser systems, diode lasers appear to be the most promising, as no surface alterations were reported following their use.
Conclusion: Air-abrasive devices and prophylaxis cups are safe for zirconia implant decontamination due to preservation of the implant surface integrity. In contrast, hand instruments and ultrasonic scalers with metal tips should be used with caution. Recommendations for the use of laser systems could not be fully established due to significant heterogeneity among included studies, but diode lasers may be the best-suited system. Further research-specifically, randomised controlled trials-would further confirm the effects of physical decontamination methods in a clinical setting.
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http://dx.doi.org/10.5051/jpis.2005080254 | DOI Listing |
Sci Rep
December 2024
Department of Chemistry, Faculty of Science, Umm Al-Qura University, Makkah, 21955, Saudi Arabia.
Malachite green is a hazardous chemical that poses serious threats to aquatic ecosystems due to its toxicity and persistence in the environment. Additionally, it is harmful to human health, recognized as a carcinogenic and mutagenic agent that can cause long-term adverse effects. Hence, in this study, malachite green dye was efficiently removed from aqueous media using CoO/MgO/MgBO novel nanocomposites, known as CBM600 and CBM800.
View Article and Find Full Text PDFAm J Infect Control
December 2024
Department of Medicine, Case Western Reserve University School of Medicine, Cleveland, Ohio, USA; Geriatric Research, Education, and Clinical Center, Louis Stokes Cleveland VA Medical Center, Cleveland, Ohio, USA. Electronic address:
Contaminated portable equipment may contribute to transmission of healthcare-associated pathogens. We demonstrated that a wall-mounted far ultraviolet-C (UV-C) light technology that delivers far UV-C only when people are not present was effective in reducing contamination on in-use patient transport chairs and physical therapy equipment in equipment rooms. The technology could potentially be used as an adjunctive measure for decontamination of portable equipment in clinical areas.
View Article and Find Full Text PDFBackground: Many hospitals and surgery centers have focused improvement efforts on operating room inefficiencies. A common inefficiency is missing and unusable surgical instrumentation, which can result in case delays and decreased effectiveness. Lean Six Sigma methodology, a set of process improvement tools focused on the reduction of waste and variation, has been used to identify and correct root causes of missing and unusable instrumentation.
View Article and Find Full Text PDFFood Res Int
January 2025
College of Food Science and Nutritional Engineering, Key Laboratory of Fruit and Vegetable Processing of Ministry of Agriculture and Rural Affairs, Beijing Key Laboratory for Food Non-Thermal Processing, China Agricultural University, Beijing 100083, PR China. Electronic address:
Frequent outbreaks caused by foodborne pathogens pose long-term risks to consumer health. To proactively reduce the load of pathogenic bacteria during food processing, a novel light-based antibacterial approach was developed by sequential application of 365 nm and 420 nm light-emitting diodes (LEDs). Results demonstrated that after treatment with 365 nm (480 J/cm) followed by 420 nm (307.
View Article and Find Full Text PDFChem Phys Lipids
November 2024
CONICET - Universidad de Buenos Aires, Instituto de Tecnología de Alimentos y Procesos Químicos (ITAPROQ), Ciudad Universitaria, Intendente Güiraldes 2160, Buenos Aires C1428EGA, Argentina; Universidad de Buenos Aires, Facultad de Ciencias Exactas y Naturales, Departamento de Industrias, Ciudad Universitaria, Intendente Güiraldes 2160, Buenos Aires C1428EGA, Argentina; Universidad de Buenos Aires, Facultad de Ciencias Exactas y Naturales, Departamento de Química Orgánica, Ciudad Universitaria, Intendente Güiraldes 2160, Buenos Aires C1428EGA, Argentina. Electronic address:
Cavitation-based technologies, such as ultrasound (or acoustic cavitation, AC) and hydrodynamic cavitation (HC), are gaining interest among green processing technologies due to their cost effectiveness in operation, toxic solvent use reduction, and ability to obtain superior processed products, compared to conventional methods. Both AC and HC generate bubbles, but their effects may differ and it is difficult to make comparisons as both are based on different phenomena and are subject to different operational variables. AC is one of the most used techniques in extraction and homogenization processes at the laboratory level.
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