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Influence of cold atmospheric plasma on dental implant materials - an in vitro analysis.
Wagner, Gunar; Eggers, Benedikt; Duddeck, Dirk; Kramer, Franz-Josef; Bourauel, Christoph; Jepsen, Søren; Deschner, James; Nokhbehsaim, Marjan.
Afiliação
  • Wagner G; Department of Periodontology, Operative and Preventive Dentistry, Center of Dento-Maxilo-Facial Medicine, University of Bonn, Welschnonnenstr. 17, 53111, Bonn, Germany. drgunarwagner@gmail.com.
  • Eggers B; Department of Oral Surgery, Center of Dento-Maxillo-Facial Medicine, University of Bonn, 53111, Bonn, Germany.
  • Duddeck D; Department of Prosthodontics, Geriatric Dentistry and Craniomandibular Disorders, University Charité Berlin, 14197, Berlin, Germany.
  • Kramer FJ; Research Department, CleanImplant Foundation, 10117, Berlin, Germany.
  • Bourauel C; Department of Oral Surgery, Center of Dento-Maxillo-Facial Medicine, University of Bonn, 53111, Bonn, Germany.
  • Jepsen S; Department of Cranio-Maxillofacial Surgery, Center of Dento-Maxillo-Facial Medicine, University of Bonn, 53111, Bonn, Germany.
  • Deschner J; Department of Oral Technology, School of Dentistry, University of Bonn, 53111, Bonn, Germany.
  • Nokhbehsaim M; Department of Periodontology, Operative and Preventive Dentistry, Center of Dento-Maxilo-Facial Medicine, University of Bonn, Welschnonnenstr. 17, 53111, Bonn, Germany.
Clin Oral Investig ; 26(3): 2949-2963, 2022 Mar.
Article em En | MEDLINE | ID: mdl-34907458
ABSTRACT
BACKGROUND AND

OBJECTIVES:

Alterations in the microenvironment of implant surfaces could influence the cellular crosstalk and adhesion patterns of dental implant materials. Cold plasma has been described to have an influence on cells, tissues, and biomaterials. Hence, the mechanisms of osseointegration may be altered by non-thermal plasma treatment depending on different chemical compositions and surface coatings of the biomaterial. The aim of the present study is to investigate the influence of cold atmospheric plasma (CAP) treatment on implant surfaces and its biological and physicochemical side effects. MATERIALS AND

METHODS:

Dental implant discs from titanium and zirconia with different surface modifications were treated with CAP at various durations. Cell behavior and adhesion patterns of human gingival fibroblast (HGF-1) and osteoblast-like cells (MG-63) were examined using scanning electron microscopy and fluorescence microscopy. Surface chemical characterization was analyzed using energy-dispersive X-ray spectroscopy (EDS). Quantitative analysis of cell adhesion, proliferation, and extracellular matrix formation was conducted including real-time PCR.

RESULTS:

CAP did not affect the elemental composition of different dental implant materials. Additionally, markers for cell proliferation, extracellular matrix formation, and cell adhesion were differently regulated depending on the application time of CAP treatment in MG-63 cells and gingival fibroblasts.

CONCLUSIONS:

CAP application is beneficial for dental implant materials to allow for faster proliferation and adhesion of cells from the surrounding tissue on both titanium and zirconia implant surfaces with different surface properties. CLINICAL RELEVANCE The healing capacity provided through CAP treatment could enhance osseointegration of dental implants and has the potential to serve as an effective treatment option in periimplantitis therapy.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Implantes Dentários / Gases em Plasma Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Implantes Dentários / Gases em Plasma Idioma: En Ano de publicação: 2022 Tipo de documento: Article