Title of article :
Efficient Electrochemical Sensor Based on Gold Nanoclusters/Carbon Ionic Liquid Crystal for Sensitive Determination of Neurotransmitters and Anti-Parkinson Drugs
Author/Authors :
Farouk Atta, Nada Chemistry Department - Faculty of Science - Cairo University - 12613 Giza - Egypt , Galal, Ahmed Chemistry Department - Faculty of Science - Cairo University - 12613 Giza - Egypt , Hamdy El-Ads, Ekram Chemistry Department - Faculty of Science - Cairo University - 12613 Giza - Egypt , Essam Galal, Aya Chemistry Department - Faculty of Science - Cairo University - 12613 Giza - Egypt
Abstract :
Purpose: Herein we introduce a simple and sensitive sensor for the electrochemical determination
of neurotransmitters compounds and anti-Parkinson drugs.
Methods: The electrochemical sensor (Au/CILCE) based on gold nanoclusters modified carbon
ionic liquid crystal (ILC) electrode was characterized using scanning electron microscopy and
voltammetry measurements.
Results: The effect of ionic liquid type in the carbon paste composite for the electro-catalytic
oxidation of L-dopa was evaluated. Highest current response was obtained in case of ILC
compared to other studied kinds of ionic liquids. The effective combination of gold nanoclusters
and ILC resulted in extra advantages including large surface area and high ionic conductivity
of the nanocomposite. L-dopa is considered one of the most important prescribed medicines
for treating Parkinson’s disease. Moreover, a binary therapy using L-dopa and carbidopa proved
effective and promising as it avoids the short comings of L-dopa mono-therapy for Parkinson’s
patients. The Au/CILCE can detect L-dopa in human serum in the linear concentration range of
0.1 μM to 90 μM with detection and quantification limits of 4.5 nM and 15.0 nM, respectively.
Also, the Au/CILCE sensor can simultaneously and sensitively detect L-dopa in the presence of
carbidopa with low detection limits.
Conclusion: The sensor is advantageous to be applicable for electrochemical sensing of other
biologically electroactive species.
Keywords :
Neurotransmitters , Anti-Parkinson drugs , Gold nanoclusters , Carbon ionic liquid crystal electrode , L-dopa , Carbidopa
Journal title :
Advanced Pharmaceutical Bulletin