| Title : In situ induced metal-enhanced fluorescence: A new strategy for biosensing the total acetylcholinesterase activity in sub-microliter human whole blood - Ma_2015_Biosens.Bioelectron_68C_648 |
| Author(s) : Ma K , Lu L , Qi Z , Feng J , Zhuo C , Zhang Y |
| Ref : Biosensors & Bioelectronics , 68C :648 , 2015 |
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Abstract :
Acetylcholinesterase (AChE) and butyrylcholinesterase (BChE) activities (i.e., total AChE) in human blood are biomarkers for theranostic monitoring of organophosphate neurotoxin-poisoned patients. We developed an ultra-sensitive method to detect the total AChE activity in sub-microliter human whole blood based on in situ induced metal-enhanced fluorescence (MEF). Both AChE and BChE can catalyze the hydrolysis of the acetylthiocholine (ATCh) substrate and produce positively-charged thiocholine (TCh). TCh can reverse the negatively-charged surface of core-shell Ag@SiO2 nanoparticles (NPs). The negatively-charged fluorescent dye (8-hydroxypyrene-1,3,6-trisulfonic acid, HPTS) is then confined to the surface of Ag@SiO2 NPs and generates an enhanced fluorescence signal in situ. Changes in the surface charge of Ag@SiO2 NPs are monitored by Zeta potential, and the MEF effect is confirmed by the measurements of fluorescence time decay. AChE activity has a dynamic range of 0U/mL to 0.005U/mL and a detection limit of 0.05mU/mL. The total AChE activity in the sub-microliter human whole blood could be determined; the results were further validated. Therefore, combining the AChE catalytic reaction with MEF provides a simple, ultra-sensitive, and cost-effective "in situ MEF" approach to determine the total AChE activity in human whole blood sample down to sub-microliters without matrix interferences. The strategy also allows potential usage in other tissues and other fields. |
| PubMedSearch : Ma_2015_Biosens.Bioelectron_68C_648 |
| PubMedID: 25660508 |
Ma K, Lu L, Qi Z, Feng J, Zhuo C, Zhang Y (2015)
In situ induced metal-enhanced fluorescence: A new strategy for biosensing the total acetylcholinesterase activity in sub-microliter human whole blood
Biosensors & Bioelectronics
68C :648
Ma K, Lu L, Qi Z, Feng J, Zhuo C, Zhang Y (2015)
Biosensors & Bioelectronics
68C :648