Enhanced dissolution of silver nanoparticles in a physical mixture with platinum nanoparticles based on the sacrificial anode effect

被引:9
作者
Breisch, Marina [1 ]
Loza, Kateryna [2 ]
Pappert, Kevin [2 ]
Rostek, Alexander [2 ]
Rurainsky, Christian [3 ]
Tschulik, Kristina [3 ]
Heggen, Marc [4 ]
Epple, Matthias [2 ]
Tiller, Joerg C. [5 ]
Schildhauer, Thomas A. [1 ]
Koeller, Manfred [1 ]
Sengstock, Christina [1 ]
机构
[1] Ruhr Univ Bochum, BG Univ Hosp Bergmannsheil Bochum Surg Res, Buerkle de la Camp Pl 1, D-44789 Bochum, Germany
[2] Univ Duisburg Essen, Inorgan Chem & Ctr Nanointegrat Duisburg Essen Ce, D-45117 Essen, Germany
[3] Ruhr Univ Bochum, Fac Chem & Biochem Electrochem & Nanoscale Mat, Univ Str 150, D-44780 Bochum, Germany
[4] Res Ctr Julich GmbH, Ernst Ruska Ctr ER C Microscopy & Spect Electron, D-52425 Julich, Germany
[5] TU Dortmund Univ, Fac Biochem & Chem Engn, Inst Biomat & Polymer Sci, Emil Figge Str 50, D-44227 Dortmund, Germany
关键词
sacrificial anode; antimicrobial activity; silver nanoparticles; platinum nanoparticles; physical mixture; BIMETALLIC NANOPARTICLES; TRIMETALLIC NANOPARTICLES; METAL NANOPARTICLES; AG; ELECTROCHEMISTRY; CATALYSIS; COATINGS; TUBES; IONS; RH;
D O I
10.1088/1361-6528/ab4e48
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
A strategy to reduce implant-related infections is the inhibition of the initial bacterial implant colonization by biomaterials containing silver (Ag). The antimicrobial efficacy of such biomaterials can be increased by surface enhancement (nanosilver) or by creating a sacrificial anode system for Ag. Such a system will lead to an electrochemically driven enhanced Ag ion release due to the presence of a more noble metal. Here we combined the enlarged surface of nanoparticles (NP) with a possible sacrificial anode effect for Ag induced by the presence of the electrochemically more noble platinum (Pt) in physical mixtures of Ag NP and Pt NP dispersions. These Ag NP/Pt NP mixtures were compared to the same amounts of pure Ag NP in terms of cell biological responses, i.e. the antimicrobial activity against Staphylococcus aureus and Escherichia coli as well as the viability of human mesenchymal stem cells (hMSC). In addition, Ag NP was analyzed by ultraviolet-visible (UV-vis) spectroscopy, cyclic voltammetry, and atomic absorption spectroscopy. It was found that the dissolution rate of Ag NP was enhanced in the presence of Pt NP within the physical mixture compared to a dispersion of pure Ag NP. Dissolution experiments revealed a fourfold increased Ag ion release from physical mixtures due to enhanced electrochemical activity, which resulted in a significantly increased toxicity towards both bacteria and hMSC. Thus, our results provide evidence for an underlying sacrificial anode mechanism induced by the presence of Pt NP within physical mixtures with Ag NP. Such physical mixtures have a high potential for various applications, for example as antimicrobial implant coatings in the biomedicine or as bactericidal systems for water and surface purification in the technical area.
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页数:9
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共 43 条
  • [1] Antibacterial Efficacy of Sacrifical Anode Thin Films Combining Silver with Platinum Group Elements within a Bacteria-Containing Human Plasma Clot
    Abuayyash, Adham
    Ziegler, Nadine
    Gessmann, Jan
    Sengstock, Christina
    Schildhauer, Thomas A.
    Ludwig, Alfred
    Koeller, Manfred
    [J]. ADVANCED ENGINEERING MATERIALS, 2018, 20 (02)
  • [2] Size-controlled silver nanoparticles synthesized over the range 5-100 nm using the same protocol and their antibacterial efficacy
    Agnihotri, Shekhar
    Mukherji, Soumyo
    Mukherji, Suparna
    [J]. RSC ADVANCES, 2014, 4 (08) : 3974 - 3983
  • [3] DNA damage response to different surface chemistry of silver nanoparticles in mammalian cells
    Ahamed, Maqusood
    Karns, Michael
    Goodson, Michael
    Rowe, John
    Hussain, Saber M.
    Schlager, John J.
    Hong, Yiling
    [J]. TOXICOLOGY AND APPLIED PHARMACOLOGY, 2008, 233 (03) : 404 - 410
  • [4] PVP-coated, negatively charged silver nanoparticles: A multi-center study of their physicochemical characteristics, cell culture and in vivo experiments
    Ahlberg, Sebastian
    Antonopulos, Alexandra
    Diendorf, Joerg
    Dringen, Ralf
    Epple, Matthias
    Floeck, Rebekka
    Goedecke, Wolfgang
    Graf, Christina
    Haberl, Nadine
    Helmlinger, Jens
    Herzog, Fabian
    Heuer, Frederike
    Hirn, Stephanie
    Johannes, Christian
    Kittler, Stefanie
    Koeller, Manfred
    Korn, Katrin
    Kreyling, Wolfgang G.
    Krombach, Fritz
    Lademann, Juergen
    Loza, Kateryna
    Luther, Eva M.
    Malissek, Marcelina
    Meinke, Martina C.
    Nordmeyer, Daniel
    Pailliart, Anne
    Raabe, Joerg
    Rancan, Fiorenza
    Rothen-Rutishauser, Barbara
    Ruehl, Eckart
    Schleh, Carsten
    Seibel, Andreas
    Sengstock, Christina
    Treuel, Lennart
    Vogt, Annika
    Weber, Katrin
    Zellner, Reinhard
    [J]. BEILSTEIN JOURNAL OF NANOTECHNOLOGY, 2014, 5 : 1944 - 1965
  • [5] Effect of gold alloying on stability of silver nanoparticles and control of silver ion release from vapor-deposited Ag-Au/polytetrafluoroethylene nanocomposites
    Alissawi, N.
    Zaporojtchenko, V.
    Strunskus, T.
    Kocabas, I.
    Chakravadhanula, V. S. K.
    Kienle, L.
    Garbe-Schoenberg, D.
    Faupel, F.
    [J]. GOLD BULLETIN, 2013, 46 (01): : 3 - 11
  • [6] An in vitro assessment of the antibacterial properties and cytotoxicity of nanoparticulate silver bone cement
    Alt, V
    Bechert, T
    Steinrücke, P
    Wagener, M
    Seidel, P
    Dingeldein, E
    Domann, E
    Schnettler, R
    [J]. BIOMATERIALS, 2004, 25 (18) : 4383 - 4391
  • [7] Bimetallic silver platinum nanoparticles with combined osteo-promotive and antimicrobial activity
    Breisch, Marina
    Grasmik, Viktoria
    Loza, Kateryna
    Pappert, Kevin
    Rostek, Alexander
    Ziegler, Nadine
    Ludwig, Alfred
    Heggen, Marc
    Epple, Matthias
    Tiller, Joerg C.
    Schildhauer, Thomas A.
    Koeller, Manfred
    Sengstock, Christina
    [J]. NANOTECHNOLOGY, 2019, 30 (30)
  • [8] BROOK I, 1989, REV INFECT DIS, V11, P361
  • [9] Chapon C, 1989, P 4 INT M SMALL PART
  • [10] CHAUSSARD J, 1990, SYNTHESIS-STUTTGART, P369