Electrode Potential-Dependent Studies of Protein Adsorption on Ti6Al4V Alloy

Molecules. 2023 Jun 29;28(13):5109. doi: 10.3390/molecules28135109.

Abstract

This article presents the potential-dependent adsorption of two proteins, bovine serum albumin (BSA) and lysozyme (LYZ), on Ti6Al4V alloy at pH 7.4 and 37 °C. The adsorption process was studied on an electropolished alloy under cathodic and anodic overpotentials, compared to the open circuit potential (OCP). To analyze the adsorption process, various complementary interface analytical techniques were employed, including PM-IRRAS (polarization-modulation infrared reflection-absorption spectroscopy), AFM (atomic force microscopy), XPS (X-ray photoelectron spectroscopy), and E-QCM (electrochemical quartz crystal microbalance) measurements. The polarization experiments were conducted within a potential range where charging of the electric double layer dominates, and Faradaic currents can be disregarded. The findings highlight the significant influence of the interfacial charge distribution on the adsorption of BSA and LYZ onto the alloy surface. Furthermore, electrochemical analysis of the protein layers formed under applied overpotentials demonstrated improved corrosion protection properties. These studies provide valuable insights into protein adsorption on titanium alloys under physiological conditions, characterized by varying potentials of the passive alloy.

Keywords: BSA; adsorption upon applied potential; corrosion protection; electrochemical conditioning; lysozyme; surface interactions.

MeSH terms

  • Adsorption
  • Alloys* / chemistry
  • Electrodes
  • Serum Albumin, Bovine / chemistry
  • Surface Properties
  • Titanium* / chemistry

Substances

  • Alloys
  • Titanium
  • Serum Albumin, Bovine

Grants and funding

The authors thank the German Research Foundation (DFG) for their financial support of the project 3040106002. A.G.O. thanks NANOtec, INTec, and ULL for laboratory facilities and ULL for funding through “Projects Led by Young Researchers. Ref 2022/20276”.