José A.L. Gomide , Anna C.R. Moço , Leonardo T.R. Tanaka , Maikon R.A. Alexandre , Tárcio Peixoto Roca , Deusilene Souza Vieira Dall’acqua , Márcia M. Costa Nunes Soares , Ronaldo J. Oliveira , Renata C. Lima , João M. Madurro , Ana G. Brito-Madurro
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This paper reports a sensor platform where silver-doped zinc oxide nanomaterial (Ag:ZnONp) was used onto carbon screen-printed electrode and ethidium bromide as indicator for development of a specific electrochemical genosensor for COVID-19. This genosensor demonstrated good linearity between the concentrations of 5.62 × 10<sup>4</sup>–5.62 copies/mL and a detection limit of 5 copies/mL with gRNA in patient’s samples, with a response time within 30 min. Molecular modeling and morphological analysis are in agreement with obtained electrochemical results. Additional techniques such as AFM, SEM, and EIS were conducted to characterize the morphological and electrochemical properties of the biosensor’s surface. The biosensor was also capable of detecting the target presence in spiked samples and demonstrated a stability of 60 days, higher than other similar biosensors for SARS-CoV-2.</p></div>","PeriodicalId":252,"journal":{"name":"Bioelectrochemistry","volume":"161 ","pages":"Article 108798"},"PeriodicalIF":4.8000,"publicationDate":"2024-08-17","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.sciencedirect.com/science/article/pii/S1567539424001609/pdfft?md5=af107968f7f0e6beec9a622d6a7c4e48&pid=1-s2.0-S1567539424001609-main.pdf","citationCount":"0","resultStr":"{\"title\":\"Advancement in SARS-CoV-2 diagnosis: A new and stable electrochemical biosensor for genomic RNA detection\",\"authors\":\"José A.L. Gomide , Anna C.R. Moço , Leonardo T.R. Tanaka , Maikon R.A. Alexandre , Tárcio Peixoto Roca , Deusilene Souza Vieira Dall’acqua , Márcia M. Costa Nunes Soares , Ronaldo J. Oliveira , Renata C. Lima , João M. Madurro , Ana G. 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Advancement in SARS-CoV-2 diagnosis: A new and stable electrochemical biosensor for genomic RNA detection
Coronavirus disease (COVID-19) is caused by infection with the SARS-CoV-2 virus, having already caused more than seven million deaths worldwide. Conventional techniques for SARS-CoV-2 detection have limitations, as high cost, low specificity, and longer analysis time, among others. Biosensors emerge as a necessary alternative to overcome the difficulties of current diagnostics. This paper reports a sensor platform where silver-doped zinc oxide nanomaterial (Ag:ZnONp) was used onto carbon screen-printed electrode and ethidium bromide as indicator for development of a specific electrochemical genosensor for COVID-19. This genosensor demonstrated good linearity between the concentrations of 5.62 × 104–5.62 copies/mL and a detection limit of 5 copies/mL with gRNA in patient’s samples, with a response time within 30 min. Molecular modeling and morphological analysis are in agreement with obtained electrochemical results. Additional techniques such as AFM, SEM, and EIS were conducted to characterize the morphological and electrochemical properties of the biosensor’s surface. The biosensor was also capable of detecting the target presence in spiked samples and demonstrated a stability of 60 days, higher than other similar biosensors for SARS-CoV-2.
期刊介绍:
An International Journal Devoted to Electrochemical Aspects of Biology and Biological Aspects of Electrochemistry
Bioelectrochemistry is an international journal devoted to electrochemical principles in biology and biological aspects of electrochemistry. It publishes experimental and theoretical papers dealing with the electrochemical aspects of:
• Electrified interfaces (electric double layers, adsorption, electron transfer, protein electrochemistry, basic principles of biosensors, biosensor interfaces and bio-nanosensor design and construction.
• Electric and magnetic field effects (field-dependent processes, field interactions with molecules, intramolecular field effects, sensory systems for electric and magnetic fields, molecular and cellular mechanisms)
• Bioenergetics and signal transduction (energy conversion, photosynthetic and visual membranes)
• Biomembranes and model membranes (thermodynamics and mechanics, membrane transport, electroporation, fusion and insertion)
• Electrochemical applications in medicine and biotechnology (drug delivery and gene transfer to cells and tissues, iontophoresis, skin electroporation, injury and repair).
• Organization and use of arrays in-vitro and in-vivo, including as part of feedback control.
• Electrochemical interrogation of biofilms as generated by microorganisms and tissue reaction associated with medical implants.