Persistent inhibition of Candida albicans biofilm and hyphae growth on titanium by graphene nanocoating

Dent Mater. 2021 Feb;37(2):370-377. doi: 10.1016/j.dental.2020.11.028. Epub 2020 Dec 25.

Abstract

Objectives: Candida albicanscolonizes biomaterial surfaces and are highly resistant to therapeutics. Graphene nanocoating on titanium compromises initial biofilm formation. However, its sustained antibiofilm potential is unknown. The objective of this study was to investigate the potential of graphene nanocoating to decrease long-term fungal biofilm development and hyphae growth on titanium.

Methods: Graphene nanocoating was deposited twice (TiGD) or five times (TiGV) on grade 4 titanium with vacuum assisted technique and characterized with Raman spectroscopy and atomic force microscope. The biofilm formation and hyphae growth of C. albicans was monitored for seven days by CFU, XTT, confocal, mean cell density and scanning electronic microscopy (SEM). Uncoated titanium was the Control. All tests had three independent biological samples and were performed in independent triplicates. Data was analyzed with one- or two-way ANOVA and Tukey's HSD (α = 0.05).

Results: Both TiGD and TiGV presented less biofilms at all times points compared with Control. The confocal and SEM images revealed few adhered cells on graphene coated samples, absence of hyphae and no features of a mature biofilm architecture. The increase in number of layers of graphene nanocoating did not improve its antibiofilm potential.

Significance: The graphene nanocoating exerted a long-term persistent inhibitory effect on the biofilm formation on titanium. The fewer cells that were able to attach on graphene coated titanium were scattered and unable to form a mature biofilm with hyphae elements. The findings open opportunities to prevent microbial attachment and proliferation on implantable materials without the use of antibiotics.

Keywords: Antiadhesive coating; Contact angle; Implant; Microbial attachment; Peri-Implantitis; Surface free energy; Topography.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Biofilms
  • Candida albicans*
  • Graphite*
  • Hyphae
  • Surface Properties
  • Titanium

Substances

  • Graphite
  • Titanium