| Keyword search (4,163 papers available) | ![]() |
"Nagy L" Authored Publications:
| Title | Authors | PubMed ID | |
|---|---|---|---|
| 1 | Identification and comprehensive characterization of moral disapproval and behavioral dysregulation-based pornography-use profiles across 42 countries | Bothe B; Tóth-Király I; Popova N; Nagy L; Koós M; Demetrovics Z; Potenza MN; Kraus SW; Ballester-Arnal R; Batthyány D; Bergeron S; Billieux J; Briken P; Burkauskas J; Cárdenas-López G; Carvalho J; Castro-Calvo J; Chen L; Ciocca G; Corazza O; Csako RI; Czakó A; Fernandez DP; Fernandez EF; Fujiwara H; Fuss J; Gabrhelík R; Gewirtz-Meydan A; Gjoneska B; Gola M; Hashim HT; Islam MS; Ismail M; Jiménez-Martínez MC; Jurin T; Kalina O; Klein V; Költo A; Lee CT; Lee SK; Lewczuk K; Lin CY; Lochner C; López-Alvarado S; Lukavská K; Mayta-Tristán P; Miller DJ; Orosová O; Orosz G; Ponce FP; Quintana GR; Quintero Garzola GC; Ramos-Diaz J; Rigaud K; Rousseau A; Scanavino MT; Schulmeyer MK; Sharan P; Shibata M; Shoib S; Sigre-Leirós V; Sniewski L; Spasovski O; Steibliene V; Stein DJ; Štulhofer A; Ünsal BC; Vaillancourt-Morel MP; Van Hout MC; Grubbs JB; | 39945767 PSYCHOLOGY |
| 2 | An electrochemical aptasensor for Δ9-tetrahydrocannabinol detection in saliva on a microfluidic platform | Kékedy-Nagy L; Perry JM; Little SR; Llorens OY; Shih SCC; | 36549107 BIOLOGY |
| 3 | Electrochemical nutrient removal from natural wastewater sources and its impact on water quality | Kékedy-Nagy L; English L; Anari Z; Abolhassani M; Pollet BG; Popp J; Greenlee LF; | 34974342 CSFG |
| Title: | An electrochemical aptasensor for Δ9-tetrahydrocannabinol detection in saliva on a microfluidic platform | ||||
| Authors: | Kékedy-Nagy L, Perry JM, Little SR, Llorens OY, Shih SCC | ||||
| Link: | https://pubmed.ncbi.nlm.nih.gov/36549107/ | ||||
| DOI: | 10.1016/j.bios.2022.114998 | ||||
| Publication: | Biosensors & bioelectronics | ||||
| Keywords: | Aptasensor; Electrochemistry; Methylene blue; Microfluidics; Saliva; Tetrahydrocannabinol; | ||||
| PMID: | 36549107 | Category: | Date Added: | 2022-12-23 | |
| Dept Affiliation: |
BIOLOGY
1 Department of Electrical and Computer Engineering, Concordia University, 1455 de Maisonneuve Blvd West, Montreal, Quebec, H3G1M8, Canada; Centre for Applied Synthetic Biology, Concordia University, 7141 Sherbrooke St. West, Montreal, Quebec, H4B1R6, Canada. 2 Centre for Applied Synthetic Biology, Concordia University, 7141 Sherbrooke St. West, Montreal, Quebec, H4B1R6, Canada; Department of Biology, Concordia University, 7141 Sherbrooke St. West, Montreal, Quebec, H4B1R6, Canada. 3 Department of Electrical and Computer Engineering, Concordia University, 1455 de Maisonneuve Blvd West, Montreal, Quebec, H3G1M8, Canada; Centre for Applied Synthetic Biology, Concordia University, 7141 Sherbrooke St. West, Montreal, Quebec, H4B1R6, Canada; Department of Biology, Concordia University, 7141 Sherbrooke St. West, Montreal, Quebec, H4B1R6, Canada. Electronic address: steve.shih@concordia.ca. |
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Description: |
We present a novel "on-off", cost-effective, rapid electrochemical aptasensor combined with a microfluidics cartridge system for the detection of ?9-THC (?9-tetrahydrocannabinol) in human saliva via differential pulse voltammetry. The assay relied on the competitive binding between the ?9-THC and a soluble redox indicator methylene blue, using an aptamer selected via FRELEX. We found that the aptasensor can detected 1 nM of ?9-THC in PBS in a three-electrode cell system, while the sensitivity and both the dissociation constant (Kd) and association constant (Kb) were dependent on the aptamer density. The aptamer also showed great affinity towards ?9-THC when tested against cannabinol and cannabidiol. The same limit of detection of 1 nM in PBS was achieved in small volume samples (~60 µL) using the aptamer-modified gold screen-printed electrodes combined with the microfluidic cartridge setup, however, the presence of 10% raw human saliva had a negative effect which manifested in a 10-fold increase in the LOD due to interfering elements. Filtering the saliva, improved the tested volume to 50% and the LOD to 5 nM of ?9-THC which is lower than the concentrations associated with impairment (6.5-32 nM). The aptasensor showed a good storage capability up to 3 days, however, the reusability significantly dropped from 10 cycles (freshly prepared) to 5 cycles. The results clearly demonstrate the feasibility of the aptasensor platform with the microfluidics chamber towards a point-of-care testing application for the detection of ?9-THC in saliva. |



