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  1. Home
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  4. Publications 2020
  5. Nanocrystalline diamond electrolyte-gates in field effect transistor for a prolific aptasensing HIV-1 tat on hydrogen-terminated surface
 
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Nanocrystalline diamond electrolyte-gates in field effect transistor for a prolific aptasensing HIV-1 tat on hydrogen-terminated surface

Journal
International Journal of Nanoelectronics and Materials
ISSN
19855761
Date Issued
2020-01-01
Author(s)
Ahmad N.A.
Rahim R.A.
Rezek B.
Kromka A.
Ismail N.S.
Subash Chandra Bose Gopinath
Universiti Malaysia Perlis
Izak T.
Prochazka V.
Faudzi F.N.M.
Abidin A.S.Z.
Maidizn N.N.M.
Handle (URI)
https://hdl.handle.net/20.500.14170/6868
Abstract
Nanocrystalline diamonds have recently gained great attention to circumvent the current hurdles, with their appealing properties such as high-surface-area to volume ratio, lowbackground current, wide potential window, biocompatibility, and chemical stability. The nanocrystalline diamonds electrolyte-gated field-effect transistor (NCD-EGFET) can operate directly in solution without involving gate oxides in bringing the hydrogen-tethered moieties and facilitates the p-type surface conductivity. This research investigated on Trans-activator of transcription (Tat) protein; a powerful viral gene activator that plays a pivotal role in the primary stage of the human immunodeficiency virus type 1 (HIV-1) replication. Dosedependent interactions of HIV-1 Tat on NCD-EGFET-based RNA aptamer sensing surface were monitored and attained the detection down to 10 fM. The linear regression curve with 3σ estimation professed the sensitivity range to be 31.213 mV/log10 [Tat Concentration]M and the limit of detection of 6.18 fM. The selectivity analysis of NCD-EGFET was conducted with different proteins from HIV (Nef and p24) and Bovine Serum Albumin. Furthermore, to practice in the clinical application, HIV-1 Tat was spiked into the human blood serum and it displayed the genuine non-fouling interaction with the aptamer. The attained highperformance signal enhancement with nanocrystalline diamond-biosensing aids to circumvent the issues in the current diagnosis.
Funding(s)
Institute of Physics
Subjects
  • Aptamer | Electrolyte...

File(s)
Research repository notification.pdf (4.4 MB)
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