Conductive Ink-Coated Paper-Based Supersandwich DNA Biosensor for Ultrasensitive Detection of Neisseria gonorrhoeae

Author:

Gupta Niharika1,Kumar D.2,Das Asmita1,Sood Seema3,Malhotra Bansi D.1ORCID

Affiliation:

1. Department of Biotechnology, Delhi Technological University, Delhi 110042, India

2. Department of Applied Chemistry, Delhi Technological University, Delhi 110042, India

3. Department of Microbiology, All India Institute of Medical Sciences, Ansari Nagar, New Delhi 110016, India

Abstract

Herein, we report results of the studies relating to the development of an impedimetric, magnetic bead-assisted supersandwich DNA hybridization assay for ultrasensitive detection of Neisseria gonorrhoeae, the causative agent of a sexually transmitted infection (STI), gonorrhea. First, a conductive ink was formulated by homogenously dispersing carboxylated multiwalled carbon nanotubes (cMWCNTs) in a stable emulsion of terpineol and an aqueous suspension of carboxymethyl cellulose (CMC). The ink, labeled C5, was coated onto paper substrates to fabricate C5@paper conductive electrodes. Thereafter, a magnetic bead (MB)-assisted supersandwich DNA hybridization assay was optimized against the porA pseudogene of N. gonorrhoeae. For this purpose, a pair of specific 5′ aminated capture probes (SCP) and supersandwich detector probes (SDP) was designed, which allowed the enrichment of target gonorrheal DNA sequence from a milieu of substances. The SD probe was designed such that instead of 1:1 binding, it allowed the binding of more than one T strand, leading to a ‘ladder-like’ DNA supersandwich structure. The MB-assisted supersandwich assay was integrated into the C5@paper electrodes for electrochemical analysis. The C5@paper electrodes were found to be highly conductive by a four-probe conductivity method (maximum conductivity of 10.1 S·cm−1). Further, the biosensing assay displayed a wide linear range of 100 aM-100 nM (109 orders of magnitude) with an excellent sensitivity of 22.6 kΩ·(log[concentration])−1. The clinical applicability of the biosensing assay was assessed by detecting genomic DNA extracted from N. gonorrhoeae in the presence of DNA from different non-gonorrheal bacterial species. In conclusion, this study demonstrates a highly sensitive, cost-effective, and label-free paper-based device for STI diagnostics. The ink formulation prepared for the study was found to be highly thixotropic, which indicates that the paper electrodes can be screen-printed in a reproducible and scalable manner.

Publisher

MDPI AG

Subject

Clinical Biochemistry,General Medicine,Analytical Chemistry,Biotechnology,Instrumentation,Biomedical Engineering,Engineering (miscellaneous)

Reference45 articles.

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2. World Health Organization (WHO) (2022). Global Health Sector Strategies on, Respectively, HIV, Viral Hepatitis, and Sexually Transmitted Infections for the Period 2022–2030, World Health Organization.

3. Visual and rapid diagnosis of Neisseria gonorrhoeae using Loop-mediated isothermal amplification combined with a polymer nanoparticle–based biosensor in clinical application;Chen;Front. Mol. Biosci.,2021

4. Systematic literature review and quantitative analysis of health problems associated with sexually transmitted Neisseria gonorrhoeae infection;Whelan;Infect. Dis. Ther.,2021

5. SERS-based sensor for the detection of sexualltransmitted pathogens in the male swab specimens: A new approach for clinical diagnosis;Berus;Biosens. Bioelectron.,2021

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