Overview on the Design of Magnetically Assisted Electrochemical Biosensors

Biosensors (Basel). 2022 Nov 1;12(11):954. doi: 10.3390/bios12110954.

Abstract

Electrochemical biosensors generally require the immobilization of recognition elements or capture probes on the electrode surface. This may limit their practical applications due to the complex operation procedure and low repeatability and stability. Magnetically assisted biosensors show remarkable advantages in separation and pre-concentration of targets from complex biological samples. More importantly, magnetically assisted sensing systems show high throughput since the magnetic materials can be produced and preserved on a large scale. In this work, we summarized the design of electrochemical biosensors involving magnetic materials as the platforms for recognition reaction and target conversion. The recognition reactions usually include antigen-antibody, DNA hybridization, and aptamer-target interactions. By conjugating an electroactive probe to biomolecules attached to magnetic materials, the complexes can be accumulated near to an electrode surface with the aid of external magnet field, producing an easily measurable redox current. The redox current can be further enhanced by enzymes, nanomaterials, DNA assemblies, and thermal-cycle or isothermal amplification. In magnetically assisted assays, the magnetic substrates are removed by a magnet after the target conversion, and the signal can be monitored through stimuli-response release of signal reporters, enzymatic production of electroactive species, or target-induced generation of messenger DNA.

Keywords: DNA biosensor; aptasensor; electrochemical biosensor; homogeneous assay; immunosensor; magnetic particle.

Publication types

  • Review

MeSH terms

  • Aptamers, Nucleotide* / chemistry
  • Biosensing Techniques* / methods
  • DNA / chemistry
  • Electrochemical Techniques / methods
  • Limit of Detection
  • Nucleic Acid Hybridization

Substances

  • Aptamers, Nucleotide
  • DNA