'All In One' SARS-CoV-2 variant recognition platform: Machine learning-enabled point of care diagnostics.

COVID-19 Laser-scribed graphene Machine learning Point-of-care SARS-CoV-2 Sensor

Journal

Biosensors & bioelectronics: X
ISSN: 2590-1370
Titre abrégé: Biosens Bioelectron X
Pays: Netherlands
ID NLM: 101769237

Informations de publication

Date de publication:
May 2022
Historique:
received: 08 11 2021
revised: 01 01 2022
accepted: 03 01 2022
entrez: 17 1 2022
pubmed: 18 1 2022
medline: 18 1 2022
Statut: ppublish

Résumé

Point of care (PoC) devices are highly demanding to control current pandemic, originated from severe acute respiratory syndrome Coronavirus 2 (SARS-CoV-2). Though nucleic acid-based methods such as RT-PCR are widely available, they require sample preparation and long processing time. PoC diagnostic devices provide relatively faster and stable results. However they require further investigation to provide high accuracy and be adaptable for the new variants. In this study, laser-scribed graphene (LSG) sensors are coupled with gold nanoparticles (AuNPs) as stable promising biosensing platforms. Angiotensin Converting Enzyme 2 (ACE2), an enzymatic receptor, is chosen to be the biorecognition unit due to its high binding affinity towards spike proteins as a key-lock model. The sensor was integrated to a homemade and portable potentistat device, wirelessly connected to a smartphone having a customized application for easy operation. LODs of 5.14 and 2.09 ng/mL was achieved for S1 and S2 protein in the linear range of 1.0-200 ng/mL, respectively. Clinical study has been conducted with nasopharyngeal swabs from 63 patients having alpha (B.1.1.7), beta (B.1.351), delta (B.1.617.2) variants, patients without mutation and negative patients. A machine learning model was developed with accuracy of 99.37% for the identification of the SARS-Cov-2 variants under 1 min. With the increasing need for rapid and improved disease diagnosis and monitoring, the PoC platform proved its potential for real time monitoring by providing accurate and fast variant identification without any expertise and pre sample preparation, which is exactly what societies need in this time of pandemic.

Identifiants

pubmed: 35036904
doi: 10.1016/j.biosx.2022.100105
pii: S2590-1370(22)00001-2
pmc: PMC8743487
doi:

Types de publication

Journal Article

Langues

eng

Pagination

100105

Informations de copyright

© 2022 Published by Elsevier B.V.

Déclaration de conflit d'intérêts

The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

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Auteurs

Duygu Beduk (D)

Central Research Test and Analysis Laboratory Application and Research Center, Ege University, 35100, Bornova, Izmir, Turkey.

José Ilton de Oliveira Filho (J)

Sensors Lab, Advanced Membranes and Porous Materials Center, Computer, Electrical and Mathematical Science and Engineering Division, King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Saudi Arabia.

Tutku Beduk (T)

Sensors Lab, Advanced Membranes and Porous Materials Center, Computer, Electrical and Mathematical Science and Engineering Division, King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Saudi Arabia.

Duygu Harmanci (D)

Central Research Test and Analysis Laboratory Application and Research Center, Ege University, 35100, Bornova, Izmir, Turkey.

Figen Zihnioglu (F)

Department of Biochemistry, Faculty of Science, Ege University, 35100, Bornova, Izmir, Turkey.

Candan Cicek (C)

Department of Medical Microbiology, Faculty of Medicine, Ege University, 35100, Bornova, Izmir, Turkey.

Ruchan Sertoz (R)

Department of Medical Microbiology, Faculty of Medicine, Ege University, 35100, Bornova, Izmir, Turkey.

Bilgin Arda (B)

Department of Infectious Diseases and Clinical Microbiology, Faculty of Medicine, Ege University, 35100, Bornova, Izmir, Turkey.

Tuncay Goksel (T)

Department of Pulmonary Medicine, Faculty of Medicine, Ege University, 35100, Bornova, Izmir, Turkey.
EGESAM-Ege University Translational Pulmonary Research Center, 35100, Bornova, Izmir, Turkey.

Kutsal Turhan (K)

Department of Thoracic Surgery, Faculty of Medicine Ege University, 35100, Bornova, Izmir, Turkey.

Khaled Nabil Salama (KN)

Sensors Lab, Advanced Membranes and Porous Materials Center, Computer, Electrical and Mathematical Science and Engineering Division, King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Saudi Arabia.

Suna Timur (S)

Central Research Test and Analysis Laboratory Application and Research Center, Ege University, 35100, Bornova, Izmir, Turkey.
Department of Biochemistry, Faculty of Science, Ege University, 35100, Bornova, Izmir, Turkey.

Classifications MeSH