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Real-time COVID-19 detection via graphite oxide-based field-effect transistor biosensors decorated with Pt/Pd nanoparticles.
Wasfi, Asma; Awwad, Falah; Qamhieh, Naser; Al Murshidi, Badria; Palakkott, Abdul Rasheed; Gelovani, Juri George.
  • Wasfi A; Department of Electrical and Communication Engineering, College of Engineering, United Arab Emirates University, P. O. Box 15551, Al Ain, United Arab Emirates.
  • Awwad F; Zayed Center for Health Sciences, United Arab Emirates University, Al Ain, United Arab Emirates.
  • Qamhieh N; Department of Electrical and Communication Engineering, College of Engineering, United Arab Emirates University, P. O. Box 15551, Al Ain, United Arab Emirates. f_awwad@uaeu.ac.ae.
  • Al Murshidi B; Zayed Center for Health Sciences, United Arab Emirates University, Al Ain, United Arab Emirates. f_awwad@uaeu.ac.ae.
  • Palakkott AR; Department of Physics, College of Science, United Arab Emirates University, P.O. Box 15551, Al Ain, United Arab Emirates.
  • Gelovani JG; Zayed Center for Health Sciences, United Arab Emirates University, Al Ain, United Arab Emirates.
Sci Rep ; 12(1): 18155, 2022 Oct 28.
Article in English | MEDLINE | ID: covidwho-2096794
ABSTRACT
Coronavirus 2019 (COVID-19) spreads an extremely infectious disease where there is no specific treatment. COVID-19 virus had a rapid and unexpected spread rate which resulted in critical difficulties for public health and unprecedented daily life disruption. Thus, accurate, rapid, and early diagnosis of COVID-19 virus is critical to maintain public health safety. A graphite oxide-based field-effect transistor (GO-FET) was fabricated and functionalized with COVID-19 antibody for the purpose of real-time detection of COVID-19 spike protein antigen. Thermal evaporation process was used to deposit the gold electrodes on the surface of the sensor substrate. Graphite oxide channel was placed between the gold electrodes. Bimetallic nanoparticles of platinum and palladium were generated via an ultra-high vacuum (UHV) compatible system by sputtering and inert-gas condensation technique. The biosensor graphite oxide channel was immobilized with specific antibodies against the COVID-19 spike protein to achieve selectivity and specificity. This technique uses the attractive semiconductor characteristics of the graphite oxide-based materials resulting in highly specific and sensitive detection of COVID-19 spike protein. The GO-FET biosensor was decorated with bimetallic nanoparticles of platinum and palladium to investigate the improvement in the sensor sensitivity. The in-house developed biosensor limit of detection (LOD) is 1 fg/mL of COVID-19 spike antigen in phosphate-buffered saline (PBS). Moreover, magnetic labelled SARS-CoV-2 spike antibody were studied to investigate any enhancement in the sensor performance. The results indicate the successful fabrication of a promising field effect transistor biosensor for COVID-19 diagnosis.
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Full text: Available Collection: International databases Database: MEDLINE Main subject: Biosensing Techniques / Nanoparticles / COVID-19 / Graphite Type of study: Diagnostic study / Experimental Studies Limits: Humans Language: English Journal: Sci Rep Year: 2022 Document Type: Article Affiliation country: S41598-022-22249-2

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Full text: Available Collection: International databases Database: MEDLINE Main subject: Biosensing Techniques / Nanoparticles / COVID-19 / Graphite Type of study: Diagnostic study / Experimental Studies Limits: Humans Language: English Journal: Sci Rep Year: 2022 Document Type: Article Affiliation country: S41598-022-22249-2