A review of antibody, aptamer, and nanomaterials synergistic systems for an amplified electrochemical signal.

Front Bioeng Biotechnol

Department of Engineering Science, College of Engineering and Agro-industrial Technology, University of the Philippines Los Baños, Los Baños, Philippines.

Published: March 2024

AI Article Synopsis

  • The study explores the combination of biomolecules with inorganic nanoparticles to enhance electrochemical biosensors targeting antigens, focusing on aptamer-based and antibody-based designs.
  • Key features examined include the development of electrochemical platforms utilizing nanomaterials for signal amplification, the crosslinking of biological agents with inorganic compounds, and the efficient electron transfer through electrode coatings.
  • The research highlights that while single receptor approaches are simpler, dual systems can integrate multiple nanomaterials, improving sensitivity and stability for potential point-of-care applications.

Article Abstract

The synergy between biomolecules with inorganic nanomaterials and nanoparticles has been investigated over the past years, primarily to improve biomarker reception, generate signals, and amplify the signals generated. In this paper, several articles on aptamer-based and antibody-based electrochemical biosensors that target antigens were examined. Among the key characteristics identified were the electrochemical platform development, which includes the usage of nanomaterials as electroactive or electrocatalytic labels, crosslinking of the biological agent with inorganic compounds, and electrode coating to provide an electronic source and support efficient electron transfer. A single approach using labeled or unlabeled biological receptors has become advantageous due to its simple architecture and more straightforward application method. However, the dual system approach allows the incorporation of more nanomaterials to boost the signal and add more features to the electrochemical system. The dual system approach uses a capture and reporter probe in a competitive or sandwich detection format. The reporter probe is often labeled by an electroactive or electrocatalytic compound or immobilized in a nanocarrier, resulting in an increase in measured peak current in proportion to the target's concentration. The reported limit of detection and linear range for each platform is presented to assess its efficiency. Generally, the dual system aptasensor showed higher sensitivity, stability, and reproducibility than the immunosensor in comparable settings. The aptasensor showed promising results for the development of point-of-care type applications.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10965549PMC
http://dx.doi.org/10.3389/fbioe.2024.1361469DOI Listing

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