DNA-Programmed Tuning of the Growth and Enzyme-Like Activity of a Bimetallic Nanozyme and Its Biosensing Applications

ACS Appl Mater Interfaces. 2023 Apr 19;15(15):18620-18629. doi: 10.1021/acsami.2c21854. Epub 2023 Apr 5.

Abstract

Nanozymes, which combine the merits of both nanomaterials and natural enzymes, have aroused tremendous attention as new representatives of artificial enzyme mimics. However, it still remains to be a great challenge to rationally engineer the morphologies and surface properties of nanostructures that lead to the desired enzyme-like activities. Here, we report a DNA-programming seed-growth strategy to mediate the growth of platinum nanoparticles (PtNPs) on gold bipyramids (AuBPs) for the synthesis of a bimetallic nanozyme. We find that the preparation of a bimetallic nanozyme is in a sequence-dependent manner, and the encoding of a polyT sequence allows the successful formation of bimetallic nanohybrids with greatly enhanced peroxidase-like activity. We further observe that the morphologies and optical properties of T15-mediated Au/Pt nanostructures (Au/T15/Pt) change over the reaction time, and the nanozymatic activity can be tuned by controlling the experimental conditions. As a concept application, Au/T15/Pt nanozymes are used to establish a simple, sensitive, and selective colorimetric assay for the determination of ascorbic acid (AA), alkaline phosphatase (ALP), and the inhibitor sodium vanadate (Na3VO4), demonstrating excellent analytical performance. This work provides a new avenue for the rational design of bimetallic nanozymes for biosensing applications.

Keywords: DNA; alkaline phosphatase; bimetallic nanozyme; colorimetric detection; inhibitor; peroxidase-like.

MeSH terms

  • Biosensing Techniques*
  • Colorimetry
  • DNA
  • Gold / chemistry
  • Metal Nanoparticles* / chemistry
  • Nanostructures* / chemistry
  • Platinum / chemistry

Substances

  • Platinum
  • Gold
  • DNA