• Title of article

    Zinc-ion implanted and deposited titanium surfaces reduce adhesion of Streptococccus mutans

  • Author/Authors

    Juan Xu، نويسنده , , Gang Ding، نويسنده , , Jinlu Li، نويسنده , , Shenhui Yang، نويسنده , , Bisong Fang، نويسنده , , Hongchen Sun، نويسنده , , Yanmin Zhou، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2010
  • Pages
    5
  • From page
    7540
  • To page
    7544
  • Abstract
    While titanium (Ti) is a commonly used dental implant material with advantageous biocompatible and mechanical properties, native Ti surfaces do not have the ability to prevent bacterial colonization. The objective of this study was to evaluate the chemical composition and bacterial adhesive properties of zinc (Zn) ion implanted and deposited Ti surfaces (Zn–PIIID–Ti) as potential dental implant materials. Surfaces of pure Ti (cp–Ti) were modified with increasing concentrations of Zn using plasma immersion ion implantation and deposition (PIIID), and elemental surface compositions were characterized by X-ray photoelectron spectrometry (XPS). To evaluate bacterial responses, Streptococcus mutans were seeded onto the modifiedTi surfaces for 48 h and subsequently observed by scanning electron microscopy. Relative numbers of bacteria on each surface were assessed by collecting the adhered bacteria, reculturing and counting colony forming units after 48 h on bacterial grade plates. Ti, oxygen and carbon elements were detected on all surfaces by XPS. Increased Zn signals were detected on Zn–PIIID–Ti surfaces, correlating with an increase of Zn-deposition time. Substantial numbers of S. mutans adhered to cp–Ti samples, whereas bacterial adhesion on Zn–PIIID–Ti surfaces signficantly decreased as the Zn concentration increased (p < 0.01). In conclusion, PIIID can successfully introduce Zn onto a Ti surface, forming a modified surface layer bearing Zn ions that consequently deter adhesion of S. mutans, a common bacterium in the oral environment.
  • Keywords
    zinc , Pure titanium , Anti-bacterial property , Surface modification , Streptococcus mutans
  • Journal title
    Applied Surface Science
  • Serial Year
    2010
  • Journal title
    Applied Surface Science
  • Record number

    1013235