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Updated: May 8, 2026

Synthesis, Assembly, and Characterization of Monolayer Protected Gold Nanoparticle Films for Protein Monolayer Electrochemistry
Published on: October 4, 2011
Surface property effects in the immobilization of L-lactate oxidase on gold electrodes by self-assembled monolayers
Lara Marie Novak1, Elisabeth Hengge2, Mislav Sušac3
1Institute of Biotechnology and Biochemical Engineering, Graz University of Technology, NAWI Graz, Petersgasse 12, Graz 8010, Austria; Institute of Material Physics, Graz University of Technology, NAWI Graz, Petersgasse 16, Graz 8010, Austria.
Abstract:
The performance of enzyme electrodes depends critically on the interactions between the enzyme and the electrode surface. In this study, L-lactate oxidase with an N-terminal His-tag (His-LOx) was immobilized on planar gold electrode modified with self-assembled monolayers (SAMs) engineered to provide distinct surface characteristics: hydrophilic, hydrophobic, or Ni²⁺-chelating for His-tag affinity binding. Electrochemical measurements revealed that the hydrophilic 1-thioglycerol (TG) SAM supported the highest initial activity (10.5 µA/cm²), whereas the hydrophobic 1-octanethiol led to a substantially lowered activity. Ni²⁺-complexed nitrilotriacetic acid (Ni-NTA) SAM markedly enhanced the operational stability of His-LOx, retaining over 65% of activity after 20 h compared to less than 20% for TG. A mixed SAM combining TG and Ni-NTA enabled the simultaneous achievement of high activity and improved stability, demonstrating a synergistic effect of hydrophilic and affinity-based interactions. These results provide mechanistic insight into how SAM surface properties and enzyme-surface interactions govern both activity and stability of LOx, offering practical design principles for the development of robust and sensitive LOx electrodes for biosensing applications.
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